CData Python Connector for BigCommerce

Build 26.0.9655

CData Python Connector for BigCommerce

Overview

The CData Python Connector for BigCommerce allows developers to write Python scripts with connectivity to BigCommerce. The connector wraps the complexity of accessing BigCommerce data in an interface commonly used by Python connectors to common database systems.

Key Features

  • WHL installation packages that enable installation with "pip install".
  • Supported for Python 3.10 or newer on Windows, Linux, and macOS.
  • Write and execute SQL queries to fetch and update data in BigCommerce.
  • Custom dialect class that enables SQLAlchemy 1.3 and 1.4 to use this connector.

Getting Started

See Getting Started to install the connector to your Python distribution and to create a basic connection to BigCommerce.

Using the Python Connector/Using from Tools

See Using the Connector for examples of executing basic SELECT, INSERT, UPDATE, DELETE, and EXECUTE queries with the module's provided classes.

See Using from Tools to connect BigCommerce data to tools such as Pandas or Petl.

SQLAlchemy ORM

SQLAlchemy can be leveraged to model the tables in BigCommerce with mapped classes. See From SQLAlchemy for instructions for configuring the Python connector with SQLAlchemy.

Pandas

Pandas' DataFrames can be used alongside the connector to generate analytical graphics. See From Pandas for a guide.

Schema Discovery

See Schema Discovery to query the provided system tables, which allows users to discover the available tables, views, and stored procedure, alongside additional information about their columns or parameters.

Advanced Features

Advanced Features details additional features supported by the connector, such as defining user defined views, ssl configuration, remoting, caching, firewall/proxy settings, and advanced logging.

SQL Compliance

See SQL Compliance for a syntax reference and code examples outlining the supported SQL.

Data Model

See Data Model for the available database objects. This section also provides more detailed information on querying specific BigCommerce entities.

Connection String Options

The Connection properties describe the various options that can be used to establish a connection.

CData Python Connector for BigCommerce

Getting Started

Connecting to BigCommerce

For information on the available WHL files for supported environments, and how to install the appropriate file for your Python distribution, see Package Installation.

For information on the module to import, and how to configure the necessary connection properties in a connection string, see Establishing a Connection.

Other available connection properties can be used to configure other aspects of the connector capabilities.

Python Version Support

The CData Python Connector for BigCommerce can be installed and used in Python 3.10 or newer.

BigCommerce Version Support

The connector leverages the BigCommerce API to enable bidirectional access to BigCommerce.

See Also

  • Using the Connector: Establish connections and query BigCommerce through Python code.
  • From SQLAlchemy: Use SQLAlchemy to establish a connection with dialect URL, and interact with BigCommerce data using mapped classes and Sessions.

CData Python Connector for BigCommerce

Package Installation

Dependencies

The Python connectors require that Python 3.10 or newer be installed.

Installation

The CData Python Connector for BigCommerce is available as a WHL file for Windows, Linux, and Mac. Each connector is built using the Python 3.10 Stable ABI (indicated by the abi3 tag in the filename), so a single wheel supports any Python 3.10 or newer installation — there is no need to match your exact Python minor version. Use the "pip install" command with the appropriate WHL file for your platform.

Windows:

pip install cdata_bigcommerce_connector-26.0.9655-cp310-abi3-win_amd64.whl

Linux:

pip install cdata_bigcommerce_connector-26.0.9655-cp310-abi3-linux_x86_64.whl

macOS:

pip install cdata_bigcommerce_connector-26.0.9655-cp310-abi3-macosx_12_0_arm64.whl

The macOS wheel supports arm64 (Apple Silicon) architectures only on macOS 12 and newer.

Regardless of the environment, certain distributions might require that the "pip3 install" command be used instead, to differentiate from a Python 2 distribution that might exist already. After installation, confirm whether the connector is successfully installed by running the "pip list" command. If "cdata_bigcommerce_connector" is present in the list output by the command, then the installation was successful.

Upgrading

When upgrading, "pip install" does not automatically clean up old JRE files. To avoid leftover files that could cause JVM errors, uninstall the previous version before installing the new one.

Licensing

After the installation is complete, a separate step is needed to activate a license for the connector. Among the CData assets in the distribution's site packages, there is an install-license tool that activates this license. From within the distribution's site-packages folder, after navigating to the "cdata/installlic_bigcommerce" folder, simply use a command like the below to activate the license. Omitting the <key> argument activates a trial license:

  • Windows:
    ./install-license.exe <key>
  • Linux / Mac:
    ./install-license.sh <key>

Sometimes, file access issues may cause pip to install the connector in a fallback file path that is not the python distribution's main or primary site-packages location. This can make it difficult to find where the connector was installed, and from there, the license activator. In that event, this python script below will print out the full file path of the connector's native file. This file will be stored in the mentioned cdata folder, from which the installlic_bigcommerce folder is trivial to find:

import os
import cdata.bigcommerce
path = os.path.abspath(cdata.bigcommerce.__file__)
print(path)

Uninstallation

If the connector needs to be uninstalled for any reason, do so by running the pip uninstall command, as in the example below:

pip uninstall cdata-bigcommerce-connector

CData Python Connector for BigCommerce

Establishing a Connection

The objects available within our connector are accessible from the "cdata.bigcommerce" module. To use the module's objects directly:

  1. Import the module as follows:
    import cdata.bigcommerce as mod
  2. To establish a connection string, call the connect() method from the connector object using an appropriate connection string, such as:
    mod.connect("AuthScheme=OAuth;InitiateOAuth=GETANDREFRESH;OAuthClientId=YourClientId;OAuthClientSecret=YourClientSecret;StoreId='YoUrSToREId';CallbackURL='http://localhost:33333'")

Connecting to BigCommerce

There are two ways to authenticate to BigCommerce:

  • Using tokens generated from the BigCommerce user interface.
  • Using OAuth credentials created by a custom BigCommerce application.

BigCommerce Token

You can obtain the credentials to connect to BigCommerce by generating a token. The token authorizes specific account information to be shared. In this flow, there is no web browser required during execution because you explicitly create and accept permissions for your application directly in the BigCommerce UI. This is the easiest way to connect and is recommended for users who are just accessing their personal or company data.

Generating a Token

In order to connect to your BigCommerce Store and obtain a token, you need to create a store-level API account as follows:

  1. Log in to your BigCommerce account.
  2. Go to Settings > Store-level API Tokens > +Create API Account.
  3. Select Token type > V2/V3 API Token.
  4. Enter the name of your account (minimum of four characters).
  5. Make a note of the API path. It has the following structure: https://api.bigcommerce.com/stores/{StoreId}/v3/. You need this path to use the API account. Note: The Store Id is also known as the store hash.
  6. Choose the OAuth Scopes for the API Account you are creating. The connector cannot access data marked as "None" and cannot modify data marked as "read-only".
  7. Click Save. A successful save displays a pop-up window containing API credentials. Save your credentials, since you cannot return to this pop-up window.
You can now use the API credentials to connect to BigCommerce by setting the following connection properties:

  • Schema: Set this to BigCommerce.
  • AuthScheme: Set this to PersonalAccessToken.
  • StoreId: Set this to the StoreId (store hash) obtained from the API path.
  • OAuthAccessToken: Set this to the Access Token obtained in the steps above.

BigCommerce Custom App

Creating a BigCommerce App describes how to create a custom app to connect to BigCommerce. This method details how to create an application for distribution and is required for each of the following sections:

  • Desktop applications
  • Web applications
  • Headless machines

Note that in all these cases, you must set the AuthScheme to OAuth. The following sections assume that you have done so.

Creating an app is more complicated than generating a single OAuthAccess Token, but may be more desireable for client integrations where your design is to connect or allow access to multiple clients, or an administrative scenario where the admin creates an app to be authorized individually by multiple individual users.

Desktop Apps

Follow the steps below to authenticate with the credentials for a custom OAuth app. See "Generating an Access Token" above for more information.

Get an OAuth Access Token

After setting the following properties, you are ready to connect:

When you connect the connector opens the OAuth endpoint in your default browser. Log in and grant permissions to the application. The connector then completes the OAuth process:
  1. Extracts the access token from the callback URL and authenticates requests.
  2. Obtains a new access token when the old one expires.
  3. Saves OAuth values in OAuthSettingsLocation that persist across connections.

Web Apps

When connecting via a Web application, you need to register a custom OAuth app with BigCommerce. See Creating a BigCommerce App for more information. You can then use the connector to get and manage the OAuth token values.

Get an OAuth Access Token

Set the following connection properties to obtain the OAuthAccessToken:

You can then call stored procedures to complete the OAuth exchange:

  1. Call the GetOAuthAuthorizationURL stored procedure. Set the AuthMode input to WEB and set the CallbackURL input to the Redirect URI you specified in your app settings.

    The stored procedure returns the URL to the OAuth endpoint.

  2. Open the URL, log in, and authorize the application. You are redirected back to the callback URL in your browser. Note the value of the "code" parameter that is now postfixed onto the URL.
  3. Call the GetOAuthAccessToken stored procedure. Set the AuthMode input to WEB. Set the Verifier input to the value of the "code" parameter that was attached to the callback URL.

To connect to data, set the OAuthAccessToken connection property to the access token returned by the stored procedure.

Headless Machines

To configure the driver to use OAuth with a user account on a headless machine, you need to authenticate on another device that has an internet browser.

  1. Choose one of these two options:

    • Option 1: Obtain the OAuthVerifier value as described in "Obtain and Exchange a Verifier Code" below.
    • Option 2: Install the connector on another machine and transfer the OAuth authentication values after you authenticate through the usual browser-based flow, as described in "Transfer OAuth Settings" below.

Option 1: Obtain and Exchange a Verifier Code

To obtain a verifier code, you must authenticate at the OAuth authorization URL.

Follow the steps below to authenticate from the machine with an internet browser and obtain the OAuthVerifier connection property.

  1. Choose one of these options:

    • If you are using the Embedded OAuth Application click BigCommerce OAuth endpoint to open the endpoint in your browser.
    • If you are using a custom OAuth application, create the Authorization URL by setting the following properties: Then call the GetOAuthAuthorizationURL stored procedure with the appropriate CallbackURL. Open the URL returned by the stored procedure in a browser.

  2. Log in and grant permissions to the connector. You are then redirected to the callback URL.
  3. Note the value of the "code" parameter that is now postfixed onto the URL.
Next, you need to exchange the OAuth verifier code for an OAuth access token. Set the following properties:

On the headless machine, set the following connection properties to obtain the OAuth authentication values:

  • InitiateOAuth: Set this to REFRESH.
  • OAuthVerifier: Set this to the verifier code.
  • OAuthClientId: (custom applications only) Set this to the client Id in your custom OAuth application settings.
  • OAuthClientSecret: (custom applications only) Set this to the client secret in the custom OAuth application settings.
  • OAuthSettingsLocation: Set this to the location of the file where you want the connector to save the OAuth token values that persist across connections.

Initiate a test connection to generate the OAuth settings file, then set the following properties to connect:

  • InitiateOAuth: Set this to REFRESH.
  • OAuthClientId: (custom applications only) Set this to the client Id assigned when you registered your application.
  • OAuthClientSecret: (custom applications only) Set this to the client secret assigned when you registered your application.
  • OAuthSettingsLocation: Set this to the location of the generated OAuth settings file. Make sure this location gives read permissions to the connector.

Option 2: Transfer OAuth Settings

Prior to connecting on a headless machine, you need to create and install a connection with the connector on a device that supports an internet browser. Set the connection properties as described in "Desktop Applications" above.

After completing the instructions in "Desktop Applications", the resulting authentication values are encrypted and written to the location specified by OAuthSettingsLocation. The default filename is OAuthSettings.txt.

Once you have successfully tested the connection, copy the OAuth settings file to your headless machine.

On the headless machine, set the following connection properties to connect to data:

  • InitiateOAuth: Set this to REFRESH.
  • OAuthClientId: (custom applications only) Set this to the client Id assigned when you registered your application.
  • OAuthClientSecret: (custom applications only) Set this to the client secret assigned when you registered your application.
  • OAuthSettingsLocation: Set this to the location of your OAuth settings file. Make sure this location gives read permissions to the connector.

Connecting to BigCommerce Account API

BigCommerce Account API supports Account level Token and Account Id to authenticate. To obtain the Account Level Token and Account Id:

  1. Request an access token in the Settings > Account-level API accounts menu in the store control panel. Note that this is different from a store-level API account.
  2. You can obtain the Account Id identifier when creating the token or copy it from the API Path field
  3. Note the value of the Account Id and Account Token.

Once you have the value of the Account Id and Token:

  • Schema: Set this to AccountAPI.
  • AuthScheme: Set this to PersonalAccessToken.
  • AccountId: Set this to the AccountId (store hash) obtained from the API path.
  • OAuthAccessToken: Set this to the Account API Token obtained in the steps above.

CData Python Connector for BigCommerce

Configuring JNI

Java Native Interface (JNI) is a standard programming interface for writing Java native methods and embedding the Java virtual machine into native applications.

The connector leverages the JNI for improved performance on Mac and Linux.

Configure the Config INI File

The Linux and Mac editions of the BigCommerce python connector are configured with an ini file. This file is used to set several parameters, including JNI behavior. This file is to be located in:

{path_to_distribution_site-packages}/cdata/config.ini

Ensure that any configuration properties you set in the ini file fall under the following section name (adjust the 311 number if you are using an different python version from 3.11):

  • For Linux:
    [bigcommerce.cpython-311-x86_64-linux-gnu.so]
  • For Mac:
    [bigcommerce.cpython-311-darwin.so]

Configure the JNI connector's behavior by editing the properties in the connector's config.ini file. The connector can be configured as follows:

  • LOGFILE: Set this the same way as the CDATA_LOGFILE envrionment variable below.
  • JAVA_HOME: Configure the path to the JVM library location used to launch the JVM.
  • CLASS_PATH: Use a colon-separated list to configure the paths to the third-party jar libraries.

Configure Environment Variables

Additionally, set the following environment variables:

  • CDATA_JAVA_HOME: Configure the path to the JVM library location used to launch the JVM.
  • CDATA_JVM_OPTIONS: Place JVM options here.
  • CDATA_LOGFILE: Set this in the following scheme: <SCHEME>://<TAG>[|<LEVEL>]

    • SCHEME: The options are STDOUT, FILE.
      • STDOUT: Both the native wrapper and odbc core log into stdout. The Logfile and Verbosity properties can override the behavior of ODBC core.
      • FILE: The native wrapper logs into <FILENAME> while the odbc core logs into <FILENAME>.driver.log. The Logfile and Verbosity properties can override the behavior of ODBC core.
    • TAG
      • For STDOUT, set this to 1. For FILE, set this to the filename.
    • LEVEL
      • Set to one of: FATAL | ERROR | WARNING | INFO | DEBUG

The following are some examples of this syntax:

  • STDOUT://1|DEBUG
  • FILE:///tmp/my_py.log|DEBUG

Custom Logger

The Python connector supports a custom logging mechanism for redirecting log output to any destination, such as a cloud storage service or logging framework. Use setCustomLoggerFactory() to register a factory function that creates a logger instance for each connection.

The factory function receives the context string from the Logfile connection property (the portion after CUSTOM://) and must return an object with a writeLog(verbosity, message) method.

To enable custom logging:

  1. Call setCustomLoggerFactory() with your factory function before opening connections.
  2. Set Logfile to CUSTOM:// followed by a context string to identify the connection.
  3. Set Verbosity to the desired log level.

The following example demonstrates a custom logger factory that creates a separate logger instance per connection:

import cdata.bigcommerce as mod
import time

class MyLogger:
    def __init__(self, loggerId):
        self.loggerId = loggerId
    def writeLog(self, verbosity, message):
        print("[MyLogger " + self.loggerId + "] " + message)

def createLogger(context):
    return MyLogger(context[len("MyLoggerId="):])

mod.setCustomLoggerFactory(createLogger)

conn1 = mod.connect("...;Logfile=CUSTOM://MyLoggerId=1;Verbosity=2;")
# do something with conn1
time.sleep(1)  # Wait for logs to flush from conn1

conn2 = mod.connect("...;Logfile=CUSTOM://MyLoggerId=2;Verbosity=2;")
# do something with conn2
time.sleep(1)  # Wait for logs to flush from conn2

CData Python Connector for BigCommerce

Changelog

General Changes

DateVersionSourceCategoryTypeDescription
2026-05-2726.0.9643GeneralConnectionRemoved
  • Removed the deprecated ReplaceInvalidTypesWithNull connection property. Use the ReplaceInvalidValuesWithNull property instead.
2026-05-2226.0.9638PythonRemoved
  • Remove support for Intel x64 architecture on macOS
2026-05-1226.0.9628BigCommerceData ModelChanged
  • BigCommerce Data Model, ProductRules view: Renamed the columnName from ImageFile to ImageUrl.
  • Columns in the BigCommerce Data Model, ShippingConsignmentQuotes view that are now marked as aggregate:
    • ProviderQuoteSignatureConfirmationFee
    • ProviderQuoteInsuredMailFee
    • ProviderQuoteLabelSizes
    • ProviderQuoteDates
    • ProviderQuoteAdditionalInfo
    • ProviderQuoteRateId
  • Pseudocolumns converted to normal attributes:
    • OrderShipments converted to LinkedProducts.
    • OrderItems converted to LinkedOrderOptions.
2026-05-1226.0.9628BigCommerceMetadataChanged
  • Monetary/numeric fields that changed from string to decimal:
    • BigCommerce Data Model, BlogPosts view: PublishedTimezoneType field.
    • BigCommerce Data Model, ProductVariantValues view: ProductId field.
    • BigCommerce Data Model, ShippingConsignmentQuotes view: ProviderQuoteRateValue field.
    • BigCommerce Data Model, Orders table: TotalTax, SubtotalTax, HandlingCostTax, ShippingCostTax, GiftCertificateAmount, CurrencyExchangeRate, CouponDiscount, BaseHandlingCost, BaseShippingCost, and BaseWrappingCost fields.
  • Timestamp fields that changed from from date to datetime:
    • BigCommerce Data Model, Currencies table: LastUpdated.
    • BigCommerce Data Model TaxClasses view: DateCreated, DateModified.
2026-05-0726.0.9623GeneralData ModelAdded
  • Added the ColumnCapabilities column to the sys_tablecolumns system table. This column is a bit mask denoting the column's write capabilities.
2026-05-0726.0.9623PythonChanged
  • Updated embedded JRE to jre-17.0.19+10 (Linux x64 / MacOs x64).
2026-04-1526.0.9601GeneralQuery ExecChanged
  • String comparisons using GREATER, LESS, and CONTAINS operators are now case-insensitive by default.
2026-04-1526.0.9601BigCommerceData ModelRemoved
  • Removed the OAuthRefreshToken column from the output of the GetOAuthAccessToken stored procedure.
2026-04-1026.0.9596BigCommercePerformanceChanged
  • Improved performance significantly for queries using a LIMIT filter, run against ProductOptionValues, ProductReviews, and ProductImages.
2026-04-0826.0.9594BigCommerceSecurityChanged
  • TLS 1.3 is now supported by default for HTTP connections.
2026-03-1625.0.9571BigCommerceData ModelAdded
  • Added the AccountAPI schema, which provides access to BigCommerce's GraphQL Account API. The AccountAPI schema includes the following views: Accounts, Apps, Subscriptions, Stores, StoreApps, StoreUsers, and Users; the following tables: AppEventSources and CheckoutItems; and the following stored procedures: AddUserToAccount, AddUserToStore, RemoveUserFromAccount, RemoveUserFromStore, CreateUser, and CancelSubscription.
2026-03-1625.0.9571BigCommerceConnectionAdded
  • Added the AccountId and Schema connection properties.
2026-01-1325.0.9509GeneralAdded
  • Added support for the REGEXP_REPLACE() string function.
2025-12-2125.0.9486PythonAdded
  • Added support for custom loggers in Python connectors on Linux and macOS.
2025-12-0525.0.9470GeneralAdded
  • Added support for the INSERT INTO SELECT statement, with driver-side execution for providers that do not support the operation natively.
2025-10-3025.0.9434PythonChanged
  • Updated embedded JRE to jre-17.0.17+10 (Linux x64 / MacOs x64).
2025-10-0625.0.9410GeneralAdded
  • Support for parsing datetime formats using ".S" and ",S" for milliseconds and nanoseconds.
2025-09-2525.0.9399BigCommerceAdded
  • Added a new key column in the PaymentMethods view named RowId. RowId is generated by combining the OrderId (or CheckoutId if there is no OrderId) with the Id.
2025-09-1225.0.9386GeneralAdded
  • Added the IsInsertable, IsUpdateable, and IsDeleteable columns to the sys_tables table.
2025-09-1025.0.9384GeneralChanged
  • All columns in statically defined Views are now reported as read-only.
2025-09-0325.0.9377GeneralChanged
  • Corrected the behavior when IN criteria with NULL values are used in the projection part. It now returns NULL instead of 0. For example, "NULL IN (1,2)" returns "NULL".
2025-09-0125.0.9375GeneralAdded
  • Added support for using the CAST function with infinity values. This function can cast "inf" and "-inf" to DOUBLE, FLOAT, or REAL.
2025-08-2125.0.9364GeneralChanged
  • Report behavior change:
    • Fixed inconsistent string value comparisons in non-table queries.
    • For example, "SELECT 'A' = 'a'" previously returned false, but it now returns true.
2025-08-1325.0.9356GeneralChanged
  • Changed the maximum number of pages held in memory from 15 to 5 for the page providers to decrease heap usage.
2025-07-3025.0.9342BigCommerceRemoved
  • Removed the pretty print of aggregate columns for all tables and views.
2025-07-1125.0.9323BigCommerceAdded
  • Added the Scope connection property.
2025-07-1025.0.9322BigCommerceAdded
  • Added the TreeId and CategoryUUID columns to the Categories table.
  • Added the Category Trees table.
  • Added the OrderId, OrderProductId, DisplayNameCustomer, DisplayNameMerchant, DisplayValueCustomer, DisplayValueMerchant columns to OrderItemOptionValues.
  • Added the Id, StoredInstruments, SupportedInstruments, Type, OrderId, and CheckoutId columns to PaymentsMethods.
  • Added the OrderId column to ShipmentItems.
  • Added the enum values New, Used, and Refurbished to the Condition column in Products.
  • Added the enum values product, album, book, drink, food, game, movie, song, tv_show to the OpenGraphType column in Products.
2025-07-1025.0.9322BigCommerceChanged
  • Changed the Listingid column name to ListingId, and changed the datatype to integer in the ChannelListings table.
  • Changed the column name DiscountRulesAmount to DiscountRules in the CustomerGroups table.
  • Changed the permitted values in the Type column to Checkbox, Date field, File Upload, Multi-line text field, Multiple choice, Product Pick List, Swatch, and Text field in OrderItemOptionValues.
  • Changed the internal names of Name and Type columns in OrderItemOptionValues.
  • Changed the datatype of the QuantityShipped column to decimal in the OrderItems table.
  • Changed the datatype of the EventDate column to datetime in the OrderItems table.
  • Changed the datatype of the BinPickingNumber and ExternalId columns to string in the Orderitems table.
  • Changed the datatype of the Id column to string in the TaxClasses table.
  • Changed the datatype of ShippingAddressCount, ItemsShipped, and ItemsTotal columns to decimal in the Orders table.
  • Changed the datatype of the Priority column to decimal in OrderTaxes.
  • Changed the API version from v2 to v3 in PaymentsMethods.
  • Changed the datatype of the ItemsTotal, ItemsShipped, BaseCost, CostExTax, CostIncTax, CostTax, BaseHandlingCost, HandlingCostExTax, HandlingCostIncTax, HandlingCostTax, and ShippingZoneId columns to decimal in ShippingConsignments.
  • Changed the datatype of the BulkPricingTiers column to string in PriceListRecords.
  • Changed the datatype of the ConfigNumberLowestValue, and ConfigNumberHighestValue columns in ProductOptions to decimal.
  • Changed the the datatype of CostPrice, SalePrice, RetailPrice, FixedCostShippingPrice, CalculatedPrice, Calculated_Weight. Weight, Width, Height, and Depth columns to decimal in ProductVariants.
  • Changed the column name Is_Free_Shipping to IsFreeShipping, Purchasing_Disabled to PurchasingDisabled, Purchasing_Disabled_Message to PurchasingDisabledMessage, SKU_ID to SkuId, Calculated_Weight to CalculatedWeight, and Image_Url to ImageUrl in ProductVariants.
  • Changed the datatype of the Purchasing_Disabled to boolean in ProductVariants.
  • Changed the datatype of the StoreCreditAmounts column to decimal in Customers.
  • Changed the datatype of the the Categories column to string in Products.
  • Changed the datatype of the InventoryLevel and InventoryWarningLevel columns to integer in Products.
  • Marked the ProductId column in ProductImages as a normal column.
  • Marked the LinkedOptionValues in ProductOptions as a normal column.
2025-07-1025.0.9322BigCommerceRemoved
  • Removed the Code column from PaymentMethods.
  • Removed the ProductSkus table.
2025-07-0725.0.9319PythonRemoved
  • Removed the 32-bit version of Windows Python.
2025-07-0225.0.9314PythonRemoved
  • Removed support for Python 3.9.
2025-06-2525.0.9307GeneralRemoved
  • Removed the "ADLS Gen 1" value from the ConnectionType property.
2025-06-2525.0.9307PythonAdded
  • Added support for Python 3.13 in Windows, Linux, and Mac editions.
2025-06-2525.0.9307PythonRemoved
  • Removed support for Python 3.8 as it is no longer supported.
2025-06-2025.0.9302GeneralAdded
  • Created the following functions:
    • TEXT_ENCODE: encodes a string into a different charset (UTF8 → UTF7 and returns a binary array as the result).
    • TEXT_DECODE: takes a binary array and decodes it back into a string when provided the charset.
    • BASE64_ENCODE: takes a binary array and encodes it as a base64 string (varchar).
    • BASE64_DECODE: takes a base 64-encoded string and decodes it into a binary array.
2025-06-1925.0.9301BigCommerceAdded
  • Added three columns: ImageURL, ItemURL, and ItemURLIsCustomized.
  • Added support for server-side filtering of the IN and NOT IN operators, to the ID column.
  • Added support for server-side filtering of the = and LIKE operators, to the Name column.
  • Added support for server-side filtering of the = operator, to the PageTitle column.
2025-06-1925.0.9301BigCommerceRemoved
  • Removed the ImageFile column.
2025-06-1825.0.9300GeneralChanged
  • The internal code for exception handling has been refactored. Exception messages returned during certain error conditions may now have different wording or formatting.
2025-06-1625.0.9298BigCommerceAdded
  • Added the FullName column to the Customers table. BigCommerce supports server-side filtering with this column.
2025-06-1225.0.9294BigCommerceChanged
  • Changed the datatype of the ExternalId column from integer to string, and marked it as a normal column.
2025-05-2725.0.9278GeneralRemoved
  • Removed the "Proprietary" enum option from ProxyAuthscheme.
2025-05-1225.0.9263PythonChanged
  • Updated embedded JRE to jre-17.0.15+6 (Linux x64 / MacOS x64) and jre-17.0.15+6 (MacOS aarch64).
2025-05-0825.0.9259BigCommerceAdded
  • Added the VideoURL column to the Products table.
2025-04-2525.0.9246BigCommerceAdded
  • Added the VideoURL column in the ProductVideos view.
2025-02-1524.0.9177GeneralAdded
  • Added support for converting unsigned integer types to the nearest signed data type that has enough precision to hold the unsigned value.This is done for JDBC only because it does not have support for unsigned data types.
2024-11-2724.0.9097GeneralAdded
  • Added ThreadId to LogModule output. Logfile lines now include the Thread ID associated with the action being performed.
2024-10-2324.0.9062BigCommerceAdded
  • Added the support for the ProductMetafields table.
2024-08-2324.0.9001BigCommerceChanged
  • Changed the Id column data type in the ProductBulkPricingRules view from String to Integer.
2024-07-1624.0.8963BigCommerceAdded
  • Added support for INSERT, UPDATE, and DELETE operations within the Brands table.
  • Added 1 new column to the Brands table: SearchKeywords.
  • Added support for 2 stored procedures: CreateBrandImage and DeleteBrandImage.
2024-07-1624.0.8963BigCommerceRemoved
  • Removed 5 columns from Pages view: Layoutfile, HasMobileVersion, MobileBody, DateCreated, Feed, and Link.
2024-07-1624.0.8963BigCommerceAdded
  • Added 1 column to Channellistings table: ExternalId
  • Added 1 column to Coupons table: RestrictedToCountries.
  • Added 3 column to Currencies table: Enabled, Istrasactional and DateUpdated.
  • Added 1 column to Customers table: ChannelIds.
  • Added 4 columns to CustomerGeoups view: CategoryAccessCategories, DateCreated, Datemodified and DiscountRulesAmount.
  • Added 1 column to GiftCertificates table: CurrencyCode.
  • Added 15 columns to OrderShippingAddresses view: BaseCost, BaseHandlingCost, CostExTax, CostTax, CostTaxClassId, CountryIso2, HandlingCostExTax, HandlingCostIncTax, HandlingCostTax, HandlingCostTaxClassId, ItemsShipped, ItemsTotal, ShippingMethod, ShippingZoneId, and ShippingZoneName.
  • Added 42 columns to OrderItems table: BaseCostPrice, BasePrice, BaseTotal, BaseWrappingCost, BinPickingNumber, Brand, ConfigurableFields, CostPriceExTax, CostPriceIncTax, CostPriceTax, Depth, DiscountedTotalIncTax, EbayItemId, EbayTransactionId, EventDate, EventName, FixedShippingCost, FulfillmentSource, GiftCertificateId, Height, IsBundledProduct, NameCustomer, NameMerchant, OptionSetId, OrderAddressId, OrderPickupMethodId, ParentOrderProductId, PriceTax, RefundAmount, ReturnId, TotalTax, Type, Upc, VariantId, Weight, Width, WrappingCostExTax, WrappingCostIncTax, WrappingCostTax, WrappingId, WrappingMessage and WrappingName.
  • Added 15 columns to the OrderShipments table: CustomerId, ShippingProviderDisplayName, MerchantShippingCost, BillingAddressCity, BillingAddressCompany, BillingAddressCountry, BillingAddressCountryIso2, BillingAddressEmail, BillingAddressFirstName, BillingAddressLastName, BillingAddressPhone, BillingAddressState, BillingAddressStreet1, BillingAddressStreet2 and BillingAddressZip.
  • Added 2 columns to the ProductImages table: ZoomURL and TinyURL.
  • Added 1 column to the ProductOptions table: Config.
  • Added 2 columns to the ShippingConsignments view: City and CountryISO.
  • Added 2 columns to the TaxClasses view: DateCreated and DateModified.
  • Added 1 column to the Shipping Methods and Shipping Zones view: CUD Operations.
2024-07-0524.0.8952BigCommerceAdded
2024-06-0524.0.8922PythonAdded
  • Added support for Python 3.12.
2024-05-0924.0.8895GeneralChanged
  • The ROUND function previously did not accept negative precision values. That feature has now been restored.
2024-03-1523.0.8840GeneralAdded
  • Created a new SQL function called STRING_COMPARE that provides java's String.compare() ability to SQL queries. Returns a number representative of the compared value of two strings
2024-01-0223.0.8767BigCommerceChanged
  • Made columns Id, ProductId, and OrderShipmentId of table ShipmentItems as Composite Keys as we were getting duplicate values and a combination all three will provide a unique value.
2023-11-2923.0.8733GeneralChanged
  • The ROUND function doesn't accept the negative precision values anymore.
2023-11-2923.0.8733GeneralChanged
  • The returning types of the FDMonth, FDQuarter, FDWeek, LDMonth, LDQuarter, LDWeek functions are changed from Timestamp to Date.
  • The return type of the ABS function will be consistent with the parameter value type.
2023-11-2823.0.8732GeneralAdded
  • Added the HMACSHA256 formatter to allow for secrets to be decoded if it is in base64 format
2023-11-0723.0.8711BigCommerceAdded
  • Added Settings and ZoneId columns to the ShippingMethods View.
2023-10-0623.0.8679BigCommerceRemoved
  • Removed the EventDateFieldName, EventDateType, EventDateStart, EventDateEnd, MYOBAssetAccount, MYOBIncomeAccount, MYOBExpenseAccount,DateLastImported and PeachtreeGlAccount columns from the Products table as these columns now does not exist in v3.
2023-10-0623.0.8679BigCommerceAdded
  • Added MapPrice, ReviewsRatingSum, ReviewsCount, OpenGraphUseMetaDescription, OpenGraphUseProductName, OpenGraphUseImage, GTIN, CustomFields, PrimaryImageProductId, PrimaryImageIsThumbnail, PrimaryImageSortOrder, PrimaryImageDescription, PrimaryImageImageFile, PrimaryImageUrlZoom, PrimaryImageUrlThumbnail, PrimaryImageUrlTiny, PrimaryImageDateModified, GiftWrappingOptionsType, GiftWrappingOptionsList and BaseVariantId columns to the Products table.
2023-10-0423.0.8677BigCommerceAdded
  • Added ValueDataColors and ValueDataImgUrl columns to the ProductOptionValues table.
2023-08-2923.0.8641PythonAdded
  • Added support for SQLAlchemy 2.0.
2023-08-1023.0.8622BigCommerceRemoved
  • Removed the Name and Type columns from the ProductVariants table as these columns now are not part of the response.
2023-08-1023.0.8622BigCommerceChanged
  • Changed the LinkedOptionValues column in the ProductVariants table from pseudo column to attribute as it contains values in the response.
2023-07-2623.0.8607BigCommerceAdded
  • Added Id, ProductId, SKU, SKU_ID, Price, CalculatedPrice, SalePrice, RetailPrice, MapPrice, Weight, Calculated_Weight, Width, Height, Depth, Is_Free_Shipping, FixedCostShippingPrice, Purchasing_Disabled, Purchasing_Disabled_Message, Image_Url, CostPrice, Upc, Mpn, Gtin, InventoryLevel, InventoryWarningLevel, BinPickingNumber, LinkedOptionValues columns to the ProductVariants table.
2023-06-2023.0.8571GeneralAdded
  • Added the new sys_lastresultinfo system table.
2023-06-0723.0.8558BigCommerceChanged
  • Added EmailConsignments, ShippingConsignments, DownloadConsignments, PickupConsignments and ShippingConsignmentQuotes views.
2023-05-1923.0.8539PythonAdded
  • Added support for Python 3.11 on Windows, Linux and Mac.
2023-05-1623.0.8536PythonRemoved
  • Removed support for Python 3.7 on Windows and Linux
2023-04-2523.0.8515GeneralRemoved
  • Removed support for the SELECT INTO CSV statement. The core code doesn't support it anymore.
2023-03-2122.0.8480BigCommerceChanged
  • Added CUD operation support to the Coupons table.
2023-03-1222.0.8471BigCommerceAdded
  • Added CustomFieldDiscovery connection property to decide whether to add customfields by name or customfields by id.
2022-12-1422.0.8383GeneralChanged
  • Added the Default column to the sys_procedureparameters table.
2022-11-1522.0.8354PythonChanged
  • Updated embedded JRE to jre8u345-b01(Linux x64 / MacOS x64) and jre-17.0.5+8(MacOS aarch64).
2022-11-0522.0.8344BigCommerceChanged
  • Made columns PriceListId, VariantId, and Currency of table PriceListRecords as Composite Keys.
2022-09-3022.0.8308GeneralChanged
  • Added the IsPath column to the sys_procedureparameters table.
2022-08-2622.0.8273BigCommerceAdded
  • Added the ProductVariants Pseudo-Column to Products table.
2022-08-1922.0.8266BigCommerceAdded
  • Added the AuthScheme connection property.
2022-08-1022.0.8257BigCommerceAdded
  • Added the following columns to the Categories table: Views, SortOrder, PageTitle, MetaKeywords, MetaDescription, LayoutFile, ImageUrl, IsVisible, SearchKeywords, DefaultProductSort, UrlPath and IsCustomized columns.
2022-08-0422.0.8251BigCommerceAdded
  • Added the following columns to the Orders table: BaseHandlingCost, BaseShippingCost, BaseWrappingCost, BillingAddress_CountryIso2, DefaultCurrencyCode, EbayOrderId, GeoipCountyrIso2, IpAddress, OrderIsDigital, Status, SubTotalTax, ShippingCostTax, HandlingCostTax, HandlingCostTaxClassId, GiftCertificateAmount, CurrencyCode, CurrencyExchangeRate, CouponDiscount, OrderSource and Products.
  • Added the following columns to the Customers table: StoreCreditAmounts, RegistrationIpAddress, AcceptsProductReviewAbandonedCartEmails and ForcePasswordReset.
  • Added the ShippingMethods column to the Coupons view.
  • Added the ProductTaxCode and ManufacturerPartNumber columns to the Products table.
  • Added the Transactions view.
2022-07-2022.0.8236BigCommerceAdded
  • Added the OrderRefunds, OrderRefundsItems and OrderRefundsPayments views.
  • Added CUD operation support to the CustomerAddresses table.
  • Added custom fields support to the Products table.
2022-07-2022.0.8236BigCommerceChanged
  • Updated the APIVersion of Pages from V2 to V3.
  • Renamed the name of following columns in CustomerAddress table: Street1->Address1. Street2->Address2. State->StateOrProvince. Zip->PostalCode. CountryISO2->CountryCode.
2022-06-2322.0.8209BigCommerceChanged
  • Updated the PageSize to 250 from 50. This will enhance the Driver's read performance.
2022-05-1922.0.8174BigCommerceAdded
  • Added custom fields support to the CustomersAddresses and OrderShippingAddresses views. The custom fields will be visible when the includeCustomFields property set to true.
2022-05-1922.0.8174BigCommerceChanged
  • The custom fields for the Customers table will now appear as individual columns instead of as an aggregate.
2022-05-1822.0.8173PythonAdded
  • Added support for Python 3.10 on Windows, Linux, and Mac
  • Added support for Python 3.9 on Mac
  • Added support for Mac M1
2022-05-1822.0.8173PythonRemoved
  • Removed support for Python 3.6 on Windows and Linux
2022-03-1021.0.8104BigCommerceAdded
  • Added support for custom fields on the Customers table.
2022-03-1021.0.8104BigCommerceAdded
  • Added the Channels and ChannelListings tables.
2021-11-1521.0.7989BigCommerceAdded
  • Added the DateModified column to the Customers table.
  • Added the SiteId, FromPath, ToType, ToEntityId, and ToURL columns to the Redirects table.
2021-11-1521.0.7989BigCommerceChanged
  • Updated the API endpoints for Customers and Redirects tables to v3.
2021-11-1521.0.7989BigCommerceRemoved
  • Removed the Path, ForwardType, and ForwardRef columns from the Redirects tables since they do not exist in v3.
2021-09-0221.0.7915GeneralAdded
  • Added support for the STRING_SPLIT table-valued function in the CROSS APPLY clause.
2021-08-0721.0.7889GeneralChanged
  • Added the KeySeq column to the sys_foreignkeys table.
2021-08-0621.0.7888GeneralChanged
  • Added the new sys_primarykeys system table.
2021-07-2321.0.7874GeneralChanged
  • Updated the Literal Function Names for relative date/datetime functions. Previously, relative date/datetime functions resolved to a different value when used in the projection as opposed to the predicate. For example: SELECT LAST_MONTH() AS lm, Col FROM Table WHERE Col > LAST_MONTH(). Formerly, the two LAST_MONTH() methods would resolve to different datetimes. Now, they will match.
  • As a replacement for the previous behavior, the relative date/datetime functions in the criteria may have an 'L' appended to them. For example: WHERE col > L_LAST_MONTH(). This will continue to resolve to the same values that were previously calculated in the criteria. Note that the "L_" prefix will only work in the predicate - it not available for the projection.
2021-06-1621.0.7837BigCommerceAdded
  • Added PriceLists and PriceListAssignments Views.
2021-04-2521.0.7785GeneralAdded
  • Added support for handling client side formulas during insert / update. For example: UPDATE Table SET Col1 = CONCAT(Col1, " - ", Col2) WHERE Col2 LIKE 'A%'
2021-04-2321.0.7783GeneralChanged
  • Updated how display sizes are determined for varchar primary key and foreign key columns so they will match the reported length of the column.
2021-04-1621.0.7776GeneralAdded
  • Non-conditional updates between two columns is now available to all drivers. For example: UPDATE Table SET Col1=Col2
2021-04-1621.0.7776GeneralChanged
  • Reduced the length to 255 for varchar primary key and foreign key columns.
2021-04-1621.0.7776GeneralChanged
  • Updated implicit and metadata caching to improve performance and support for multiple connections. Old metadata caches are not compatible - you need to generate new metadata caches if you are currently using CacheMetadata.
2021-04-1621.0.7776GeneralChanged
  • Updated index naming convention to avoid duplicates.

CData Python Connector for BigCommerce

Using the Connector

This section provides a walk-through for writing BigCommerce data access code in Python script.

For more information on the available data source entities and how to query them with SQL, see Data Model. For the SQL syntax, see SQL Compliance.

Connecting from Code

For information on how to deploy the connector and configure the connection to BigCommerce, see Package Installation and Establishing a Connection.

For information on how to connect with the bigcommerce.connector module and its related classes, see Connecting.

Executing SQL

The connection's cursor object is used to directly execute SQL queries. For information on how to execute SELECT statements and process the returned result sets, see Querying Data. For information on to modify the data in BigCommerce with INSERT, UPDATE, and DELETE statements, see Modifying Data .

Executing Stored Procedures

You can call stored procedures by using the EXECUTE statement. For further information, see Calling Stored Procedures.

CData Python Connector for BigCommerce

Connecting

Connecting with the cdata.bigcommerce Module:

The connector's module is used directly to establish a connection with the data source. It does this by using a connection string as its argument. For example:
import cdata.bigcommerce as mod
conn = mod.connect("AuthScheme=OAuth;InitiateOAuth=GETANDREFRESH;OAuthClientId=YourClientId;OAuthClientSecret=YourClientSecret;StoreId='YoUrSToREId';CallbackURL='http://localhost:33333'")

Once the connection is created, you can use it to execute subsequent SQL queries.

CData Python Connector for BigCommerce

Querying Data

After connecting as described in Connecting, you can use the open connection to execute SQL statements.

Executing Queries

To execute SQL statements that return data, use the execute() method. Once a query is executed, the result set is fetched from the cursor. This result set can then be iterated over to process the records individually.

For example:

cur = conn.execute("SELECT FirstName, LastName FROM Customers")
rs = cur.fetchall()
for row in rs:
	print(row)

Parameterized Queries

Various Python collections, such as arrays and tuples, can act as additional arguments for the execute() method. This enables you to parameterize the queries executed and help to prevent SQL Injection.

For example:

cmd = "SELECT FirstName, LastName FROM Customers WHERE Column2 = ?"
params = ["Bob"]
cur = conn.execute(cmd, params)
rs = cur.fetchall()
for row in rs:
	print(row)

CData Python Connector for BigCommerce

Modifying Data

The connection is also used to issue INSERT, UPDATE, and DELETE commands to the data source. Parameters can be used with these statements if desired.

Note that the connector does not support transactions. As with normal write operations, all SQL statements executed by this connector affect the data source immediately. Call the connection's commit() method following the execution.

Insert

The following example adds a new record to the table:
cmd = "INSERT INTO Customers (FirstName, LastName) VALUES (?, ?)"
params = ["Jon Doe", "John"]
cur = conn.execute(cmd, params)
print("Records affected: ", cur.rowcount)

Update

The following example modifies an existing record in the table:
cmd = "UPDATE Customers SET LastName = ? WHERE Id = ?"
params = ["John", "10002"]
cur = conn.execute(cmd, params)
print("Records affected: ", cur.rowcount)

Delete

The following example removes an existing record from the table:

cmd = "DELETE FROM Customers WHERE Id = ?"
params = ["10002"]
cur = conn.execute(cmd, params)
print("Records affected: ", cur.rowcount)

CData Python Connector for BigCommerce

Calling Stored Procedures

You can execute stored procedures using either the execute() or callproc() method of the connection.

Calling Stored Procedures Using Execute()

When you call stored procedures by issuing EXECUTE commands, the stored procedure arguments are parameterized. For example:
cmd = "EXECUTE SelectEntries ObjectName = ?"
params = ["Account"]
conn.execute(cmd, params)

Calling Stored Procedures Using Callproc()

When you call stored procedured by issuing the callproc() method, the stored procedure arguments are a procedure name and a list of parameters. For example:
cur = conn.cursor()
params = ["Account"]
cur.callproc("SelectEntries", params)

CData Python Connector for BigCommerce

Using from Tools

The connector is integrated with other tools and packages within Python.

Python Integration Guides

The following sections show how to create and use connections with the connector in common packages in Python:

Complete List of BigCommerce Integration Quickstarts

For information on connecting from other applications, see BigCommerce integration guides.

CData Python Connector for BigCommerce

From SQLAlchemy

The CData Python Connector for BigCommerce includes a Dialect class that enables integration with SQLAlchemy. Bear in mind that several aspects of connector functionality are not currently supported in SQLAlchemy 2.0 or above. If necessary, downgrade SQLAlchemy to version 1.4 or 1.3 before using this connector.

The following sections detail various aspects of this integration:

Connecting From SQLAlchemy

To construct a URL with which SQLAlchemy loads and uses the appropriate connector automatically, see Connecting

Reflecting Metadata With SQLAlchemy

To learn how to model BigCommerce tables with mapped classes, see Reflecting Metadata.

Querying Data From SQLAlchemy

To learn how to use mapped classes to query the associated tables, see Querying Data.

Modifying Data From SQLAlchemy

The connector provides INSERT/UPDATE/DELETE functionality in SQLAlchemy. To learn how to call the session's execute() method to affect the data in the data source, see Modifying Data.

CData Python Connector for BigCommerce

Connecting

Connecting With a Dialect URL

Establishing a connection using SQLAlchemy requires a specific URL format.
from sqlalchemy import create_engine
engine = create_engine("bigcommerce:///?AuthScheme=OAuth;InitiateOAuth=GETANDREFRESH;OAuthClientId=YourClientId;OAuthClientSecret=YourClientSecret;StoreId='YoUrSToREId';CallbackURL='http://localhost:33333'")

For SQLAlchemy 2.0, the dialect name is bigcommerce_2. To establish a connection, use the following URL format:

from sqlalchemy import create_engine
engine = create_engine("bigcommerce_2:///?AuthScheme=OAuth;InitiateOAuth=GETANDREFRESH;OAuthClientId=YourClientId;OAuthClientSecret=YourClientSecret;StoreId='YoUrSToREId';CallbackURL='http://localhost:33333'")

CData Python Connector for BigCommerce

Reflecting Metadata

SQLAlchemy can act as an Object-relational Map (ORM). This enables you to treat records of a database table as instantiable records. To leverage this functionality, you must reflect the underlying metadata in one of the following ways.

Note: The following examples employ SQLAlchemy 1.4.

Modeling Data Using a Mapping Class

Use "sqlalchemy.ext.declarative.declarative_base" to declare a mapping class for the table you wish to model in the ORM. A known table in the data model is modeled either partially or completely, as shown in the following example:
from sqlalchemy.ext.declarative import declarative_base
Base = declarative_base()
class Customers(Base):
	__tablename__ = "Customers"
	Id = Column(String, primary_key=True)
	FirstName = Column(String)
	LastName = Column(String)

Automatically Reflecting Metadata

Rather than mapping tables manually, SQLAlchemy can discover the metadata for one or more tables automatically. To accomplish this across the entire data model, use automap_base:
from sqlalchemy import MetaData
from sqlalchemy.ext.automap import automap_base
meta = MetaData()
abase = automap_base(metadata=meta)
abase.prepare(autoload_with=engine)
Customers = abase.classes.Customers

You can also reflect a single table with an inspector. When reflecting this way, providing a list of specific columns to map is optional:

from sqlalchemy import MetaData, Table
from sqlalchemy import inspect
meta = MetaData()
insp = inspect(engine)
Customers_table = Table("Customers", meta)
insp.reflect_table(Customers_table, ["Id","LastName"])

CData Python Connector for BigCommerce

Querying Data

After you use the steps in Connecting to connect, and use one of the methods in Reflecting Metadata to reflect some of the metadata, you can use a session object to query data.

Querying Data Using the Query Method

If the mapping class has been prepared, use it with a session object to query the data source. After binding the engine to the session, provide the mapping class to the session's query method.

For example:

engine = create_engine("bigcommerce:///?AuthScheme=OAuth;InitiateOAuth=GETANDREFRESH;OAuthClientId=YourClientId;OAuthClientSecret=YourClientSecret;StoreId='YoUrSToREId';CallbackURL='http://localhost:33333'")
factory = sessionmaker(bind=engine)
session = factory()
for instance in session.query(Customers).filter_by(Column2="Bob"):
	print("Id: ", instance.Id)
	print("FirstName: ", instance.FirstName)
	print("LastName: ", instance.LastName)
	print("---------")

Querying Data Using the Execute Method

The session object can also run the query with the execute() method alongside the appropriate Table object. Assuming you have an active session, the following is just as viable:
Customers_table = Customers.metadata.tables["Customers"]
for instance in session.execute(Customers_table.select().where(Customers_table.c.Column2 == "Bob")):
	print("Id: ", instance.Id)
	print("FullName: ", instance.Name)
	print("City: ", instance.BillingCity)
	print("---------")

CData Python Connector for BigCommerce

Executing JOINs

Implicit Joining

If mapped classes of related BigCommerce objects have a singular foreign key relationship, the classes are implicitly joined. After importing the necessary objects, a relationship is established between your two mapped classes, as in the example below:
from sqlalchemy.ext.declarative import declarative_base
from sqlalchemy import Column, String, Integer, DateTime, ForeignKey
from sqlalchemy.orm import sessionmaker, relationship

Base = declarative_base()
class Contact(Base):
	__tablename__ = "Contact"
	Id = Column(Integer, primary_key=True)
	Name = Column(String)
	Email = Column(String)
	BirthDate = Column(DateTime)
	AccountId = Column(String, ForeignKey("Account.Id"))
	Account_Link = relationship("Account", back_populates="Contact_Link")

class Account(Base):
	__tablename__ = "Account"
	Id = Column(String, primary_key=True)
	Name = Column(String)
	BillingCity = Column(String)
	NumberOfEmployees = Column(Integer)
	Contact_Link = relationship("Contact", order_by=Contact.Id, back_populates="Account_Link")

Once the relationship is established, the tables are queried simultaneously using the session's query() method. For example:

rs = session.query(Account, Contact).filter(Account.Id == Contact.AccountId)
for Ac, Ct in rs:
  print("AccountId: ", Ac.Id)
  print("AccountName: ", Ac.Name)
  print("ContactId: ", Ct.Id)
  print("ContactName: ", Ct.Name)

Other Join Forms

In situations where mapped classes have either no foreign keys or multiple foreign keys, you may need different forms of the JOIN query to accommodate them. Using the earlier classes as examples, the following JOIN queries are possible as well:
  • Explicit condition (necessary if there are no foreign keys in your mapped classes):
    rs = session.query(Account, Contact).join(Contact, Account.Id == Contact.AccountId)
    for Ac, Ct in rs:
  • Left-to-right relationship:
    rs = session.query(Account, Contact).join(Account.Contact_Link)
    for Ac, Ct in rs:
  • Left-to-right relationship with explicit target:
    rs = session.query(Account, Contact).join(Contact, Account.Contact_Link)
    for Ac, Ct in rs:
  • String form of a left-to-right relationship:
    rs = session.query(Account, Contact).join("Contact_Link")
    for Ac, Ct in rs:

CData Python Connector for BigCommerce

Other SQL Clauses

SQLAlchemy ORM also exposes support for other clauses in SQL, such as ORDER BY, GROUP BY, LIMIT, and OFFSET. All of these are supported by this connector:

ORDER BY

The following example sorts by a specified column using the session object's query() method:
rs = session.query(Customers).order_by(Customers.AnnualRevenue)
for instance in rs:
	print("Id: ", instance.Id)
	print("FirstName: ", instance.FirstName)
	print("LastName: ", instance.LastName)
	print("---------")

You can also use the session object's execute() method perform an ORDER BY. For example:

rs = session.execute(Customers_table.select().order_by(Customers_table.c.AnnualRevenue))
for instance in rs:

GROUP BY

The following example uses the session object's query() method to group records with a specified column:
rs = session.query(func.count(Customers.Id).label("CustomCount"), Customers.FirstName).group_by(Customers.FirstName)
for instance in rs:
	print("Count: ", instance.CustomCount)
	print("FirstName: ", instance.FirstName)
	print("---------")

You can also use the session object's execute() method to perform a GROUP BY:

rs = session.execute(Customers_table.select().with_only_columns([func.count(Customers_table.c.Id).label("CustomCount"), Customers_table.c.FirstName]).group_by(Customers_table.c.FirstName))
for instance in rs:

LIMIT and OFFSET

The following example uses the session object's query() method to skip the first 100 records and fetch the following 25:
rs = session.query(Customers).limit(25).offset(100)
for instance in rs:
	print("Id: ", instance.Id)
	print("FirstName: ", instance.FirstName)
	print("LastName: ", instance.LastName)
	print("---------")

You can also use the session object's execute() method to set a LIMIT or OFFSET:

rs = session.execute(Customers_table.select().limit(25).offset(100))
for instance in rs:

CData Python Connector for BigCommerce

Aggregate Functions

Certain aggregate functions can also be used within SQLAlchemy by using the func module.

To import this module, execute:

from sqlalchemy.sql import func

Once func is imported, the following aggregate functions are available:

COUNT

The following example counts the number of records in a set of groups using the session object's query() method.
rs = session.query(func.count(Customers.Id).label("CustomCount"), Customers.FirstName).group_by(Customers.FirstName)
for instance in rs:
	print("Count: ", instance.CustomCount)
	print("FirstName: ", instance.FirstName)
	print("---------")

You can also execute COUNT using the session object's execute() method:

rs = session.execute(Customers_table.select().with_only_columns([func.count(Customers_table.c.Id).label("CustomCount"), Customers_table.c.FirstName])group_by(Customers_table.c.FirstName))
for instance in rs:

SUM

This example calculates the cumulative amount of a numeric column in a set of groups.

rs = session.query(func.sum(Customers.AnnualRevenue).label("CustomSum"), Customers.FirstName).group_by(Customers.FirstName)
for instance in rs:
	print("Sum: ", instance.CustomSum)
	print("FirstName: ", instance.FirstName)
	print("---------")

You can also invoke SUM using the session object's execute() method.

rs = session.execute(Customers_table.select().with_only_columns([func.sum(Customers_table.c.AnnualRevenue).label("CustomSum"), Customers_table.c.FirstName]).group_by(Customers_table.c.FirstName))
for instance in rs:

AVG

This example uses the session object's query() method to calculate the average amount of a numeric column in a set of groups:
rs = session.query(func.avg(Customers.AnnualRevenue).label("CustomAvg"), Customers.FirstName).group_by(Customers.FirstName)
for instance in rs:
	print("Avg: ", instance.CustomAvg)
	print("FirstName: ", instance.FirstName)
	print("---------")

You can also use the session object's execute() method to invoke AVG:

rs = session.execute(Customers_table.select().with_only_columns([func.avg(Customers_table.c.AnnualRevenue).label("CustomAvg"), Customers_table.c.FirstName]).group_by(Customers_table.c.FirstName))
for instance in rs:

MAX and MIN

This example finds the maximum value and minimum value of a numeric column in a set of groups.
rs = session.query(func.max(Customers.AnnualRevenue).label("CustomMax"), func.min(Customers.AnnualRevenue).label("CustomMin"), Customers.FirstName).group_by(Customers.FirstName)
for instance in rs:
	print("Max: ", instance.CustomMax)
	print("Min: ", instance.CustomMin)
	print("FirstName: ", instance.FirstName)
	print("---------")

You can also use the session object's execute() method to invoke MAX and MIN:

rs = session.execute(Customers_table.select().with_only_columns([func.max(Customers_table.c.AnnualRevenue).label("CustomMax"), func.min(Customers_table.c.AnnualRevenue).label("CustomMin"), Customers_table.c.FirstName]).group_by(Customers_table.c.FirstName))
for instance in rs:

CData Python Connector for BigCommerce

Modifying Data

Commands can be executed individually by the session with a call to "execute()".

Obtaining the Table Object

The query supplied to this method is constructed using the associated Table object of a mapped class. This Table object is obtained from the mapped class's metadata field, as below:

Customers_table = Customers.metadata.tables["Customers"]

Once the table object is obtained, the write operations are executed in the following ways. The queries are executed immediately without the need for a call to "commit()":

Insert

The following example adds a new record to the table:

session.execute(Customers_table.insert(), {"FirstName": "Jon Doe", "LastName": "John"})

Update

The following example modifies an existing record in the table:

session.execute(Customers_table.update().where(Customers_table.c.Id == "10002").values(FirstName="Jon Doe", LastName="John"))

Delete

The following example removes an existing record from the table:

session.execute(Customers_table.delete().where(Customers_table.c.Id == "10002"))

CData Python Connector for BigCommerce

From Pandas

When combined with the connector, Pandas can be used to generate data frames that contain your BigCommerce data. Once created, a data frame can be passed to various other Python packages.

Connecting

Pandas relies on an SQLAlchemy engine to execute queries. Before you can use Pandas you must import it:
import pandas as pd
from sqlalchemy import create_engine
engine = create_engine("bigcommerce:///?AuthScheme=OAuth;InitiateOAuth=GETANDREFRESH;OAuthClientId=YourClientId;OAuthClientSecret=YourClientSecret;StoreId='YoUrSToREId';CallbackURL='http://localhost:33333'")

Querying Data

In Pandas, SELECT queries are provided in a call to the read_sql() method, alongside a relevant connection object. Pandas executes the query on that connection, and returns the results in the form of a data frame, which can be used for a variety of purposes.
df = pd.read_sql("""
	SELECT
	   FirstName,
	   LastName,
     $exNumericCol;
	FROM Customers;""", engine)
print(df)

Modifying Data

To insert new records into a table, create a new data frame, and define its fields accordingly. When that is done, call to_sql() on the data frame to perform the INSERT operation with the connector, as shown in the example below. You must set the "if _exists" argument to "append" to prevent Pandas from attempting building the table from scratch. To prevent Pandas from writing the data frame index as a column, set index=False.
df = pd.DataFrame({"FirstName": ["Jon Doe"], "LastName": ["John"]})
df.to_sql("Customers", con=engine, if_exists="append", index=False)

CData Python Connector for BigCommerce

From Matplotlib

Matplotlib contains a number of tools that can graphically model BigCommerce data after being fed a data frame From Pandas.

Using PyPlot

Before any Matplotlib tool, such as pyplot, can be used, it must be imported:
from matplotlib import pyplot as plt

Once a Pandas data frame is obtained, it can be used to create a plot visualizing BigCommerce data. For example, the following plot generates and displays a bar graph relating FirstName and AnnualRevenue values:

df.plot(kind="bar", x="FirstName", y=["AnnualRevenue"])
plt.show()

CData Python Connector for BigCommerce

From Petl

The connector can be used to create ETL applications and pipelines for CSV data in Python using Petl.

Install Required Modules

Install the Petl modules using the pip utility.
pip install petl

Connecting

After you import the modules, including the CData Python Connector for BigCommerce, you can use the connector's connect function to create a connection using a valid BigCommerce connection string. If you prefer not to use a direct connection, you can use a SQLAlchemy engine.
import petl as etl
import cdata.bigcommerce as mod
cnxn = mod.connect("AuthScheme=OAuth;InitiateOAuth=GETANDREFRESH;OAuthClientId=YourClientId;OAuthClientSecret=YourClientSecret;StoreId='YoUrSToREId';CallbackURL='http://localhost:33333'")

Extract, Transform, and Load the BigCommerce Data

Create a SQL query string and store the query results in a DataFrame.
sql = "SELECT	FirstName, LastName FROM Customers "
table1 = etl.fromdb(cnxn,sql)

Loading Data

With the query results stored in a DataFrame, you can load your data into any supported Petl destination. The following example loads the data into a CSV file.
etl.tocsv(table1,'output.csv')

Modifying Data

Insert new rows into BigCommerce tables using Petl's appenddb function.
table1 = [['FirstName','LastName'],['Jon Doe','John']]
etl.appenddb(table1,cnxn,'Customers')

CData Python Connector for BigCommerce

Schema Discovery

The extension supports schema discovery by using SQL queries to available System Tables.

Using SQL

The following sections describe the discovery of metadata through several System Tables:

CData Python Connector for BigCommerce

Tables and Views

The connector possesses system tables that are used to discover the tables and views available in the data model. Of these system tables, "sys_tables" and "sys_views" are used to fetch information about the available tables and views respectively:

Tables


import cdata.bigcommerce as mod
conn = mod.connect("AuthScheme=OAuth;InitiateOAuth=GETANDREFRESH;OAuthClientId=YourClientId;OAuthClientSecret=YourClientSecret;StoreId='YoUrSToREId';CallbackURL='http://localhost:33333'")
cur = conn.cursor()
cmd = "SELECT * FROM sys_tables"
cur.execute(cmd)
rs = cur.fetchall()
for row in rs:
	print(row)

Views


import cdata.bigcommerce as mod
conn = mod.connect("AuthScheme=OAuth;InitiateOAuth=GETANDREFRESH;OAuthClientId=YourClientId;OAuthClientSecret=YourClientSecret;StoreId='YoUrSToREId';CallbackURL='http://localhost:33333'")
cur = conn.cursor()
cmd = "SELECT * FROM sys_views"
cur.execute(cmd, params)
rs = cur.fetchall()
for row in rs:
	print(row)

CData Python Connector for BigCommerce

Columns

The available columns for any given table are fetched from a system table called "sys_tablecolumns". A specific table name is provided in the WHERE criteria to restrict the table from which the column information is fetched:

import cdata.bigcommerce as mod
conn = mod.connect("AuthScheme=OAuth;InitiateOAuth=GETANDREFRESH;OAuthClientId=YourClientId;OAuthClientSecret=YourClientSecret;StoreId='YoUrSToREId';CallbackURL='http://localhost:33333'")
cur = conn.cursor()
cmd = "SELECT * FROM sys_tablecolumns WHERE TableName = 'Customers'"
cur.execute(cmd)
rs = cur.fetchall()
for row in rs:
	print(row)

CData Python Connector for BigCommerce

Procedures

Procedures

A system table called "sys_procedures" is queried to obtain the available stored procedures that are executed:
import cdata.bigcommerce as mod
conn = mod.connect("AuthScheme=OAuth;InitiateOAuth=GETANDREFRESH;OAuthClientId=YourClientId;OAuthClientSecret=YourClientSecret;StoreId='YoUrSToREId';CallbackURL='http://localhost:33333'")
cur = conn.cursor()
cmd = "SELECT * FROM sys_procedures"
cur.execute(cmd)
rs = cur.fetchall()
for row in rs:
	print(row)

Parameters

The input parameters of any stored procedure are similarly obtained from the "sys_procedureparameters" system table:
import cdata.bigcommerce as mod
conn = mod.connect("AuthScheme=OAuth;InitiateOAuth=GETANDREFRESH;OAuthClientId=YourClientId;OAuthClientSecret=YourClientSecret;StoreId='YoUrSToREId';CallbackURL='http://localhost:33333'")
cur = conn.cursor()
cmd = "SELECT * FROM sys_procedureparameters WHERE ProcedureName = 'SelectEntries'"
cur.execute(cmd)
rs = cur.fetchall()
for row in rs:
	print(row)

CData Python Connector for BigCommerce

Advanced Features

This section details a selection of advanced features of the BigCommerce connector.

User Defined Views

The connector supports the use of user defined views, virtual tables whose contents are decided by a pre-configured user defined query. These views are useful when you cannot directly control queries being issued to the drivers. For an overview of creating and configuring custom views, see User Defined Views .

SSL Configuration

Use SSL Configuration to adjust how connector handles TLS/SSL certificate negotiations. You can choose from various certificate formats;. For further information, see the SSLServerCert property under "Connection String Options" .

Firewall and Proxy

Configure the connector for compliance with Firewall and Proxy, including Windows proxies and HTTP proxies. You can also set up tunnel connections.

Caching Data

Caching Data enables faster access to data and reduces the number of API calls, improving performance. The connector supports a simple caching model where multiple connections can also share the cache over time. When configuring the cache connection, you can specify automatic or explicit data caching.

Query Processing

The connector offloads as much of the SELECT statement processing as possible to BigCommerce and then processes the rest of the query in memory (client-side).

For further information, see Query Processing.

Logging

For an overview of configuration settings that can be used to refine CData logging, see Logging. Only two connection properties are required for basic logging, but there are numerous features that support more refined logging, which enables you to use the LogModules connection property to specify subsets of information to be logged.

Exception Handling

For an overview of how exceptions are reported and the components of an exception, see Exception Handling.

CData Python Connector for BigCommerce

User Defined Views

The CData Python Connector for BigCommerce supports the use of user defined views: user-defined virtual tables whose contents are decided by a preconfigured query. User defined views are useful in situations where you cannot directly control the query being issued to the driver; for example, when using the driver from a tool.

Use a user defined view to define predicates that are always applied. If you specify additional predicates in the query to the view, they are combined with the query already defined as part of the view.

There are two ways to create user defined views:

  • Create a JSON-formatted configuration file defining the views you want.
  • DDL statements.

Defining Views Using a Configuration File

User defined views are defined in a JSON-formatted configuration file called UserDefinedViews.json. The connector automatically detects the views specified in this file.

You can also have multiple view definitions and control them using the UserDefinedViews connection property. When you use this property, only the specified views are seen by the connector.

This user defined view configuration file is formatted so that each root element defines the name of a view, and includes a child element, called query, which contains the custom SQL query for the view.

For example:

{
	"MyView": {
		"query": "SELECT * FROM Customers WHERE MyColumn = 'value'"
	},
	"MyView2": {
		"query": "SELECT * FROM MyTable WHERE Id IN (1,2,3)"
	}
}
Use the UserDefinedViews connection property to specify the location of your JSON configuration file. For example:
"UserDefinedViews", "C:\\Users\\yourusername\\Desktop\\tmp\\UserDefinedViews.json"

Defining Views Using DDL Statements

The connector is also capable of creating and altering the schema via DDL Statements such as CREATE LOCAL VIEW, ALTER LOCAL VIEW, and DROP LOCAL VIEW.

Create a View

To create a new view using DDL statements, provide the view name and query as follows:

CREATE LOCAL VIEW [MyViewName] AS SELECT * FROM Customers LIMIT 20;

If no JSON file exists, the above code creates one. The view is then created in the JSON configuration file and is now discoverable. The JSON file location is specified by the UserDefinedViews connection property.

Alter a View

To alter an existing view, provide the name of an existing view alongside the new query you would like to use instead:

ALTER LOCAL VIEW [MyViewName] AS SELECT * FROM Customers WHERE TimeModified > '3/1/2020';

The view is then updated in the JSON configuration file.

Drop a View

To drop an existing view, provide the name of an existing schema alongside the new query you would like to use instead.

DROP LOCAL VIEW [MyViewName]

This removes the view from the JSON configuration file. It can no longer be queried.

Schema for User Defined Views

In order to avoid a view's name clashing with an actual entity in the data model, user defined views are exposed in the UserViews schema by default. To change the name of the schema used for UserViews, reset the UserViewsSchemaName property.

Working with User Defined Views

For example, a SQL statement with a user defined view called UserViews.RCustomers only lists customers in Raleigh:
SELECT * FROM Customers WHERE City = 'Raleigh';
An example of a query to the driver:
SELECT * FROM UserViews.RCustomers WHERE Status = 'Active';
Resulting in the effective query to the source:
SELECT * FROM Customers WHERE City = 'Raleigh' AND Status = 'Active';
That is a very simple example of a query to a user defined view that is effectively a combination of the view query and the view definition. It is possible to compose these queries in much more complex patterns. All SQL operations are allowed in both queries and are combined when appropriate.

CData Python Connector for BigCommerce

SSL Configuration

Customizing the SSL Configuration

By default, the connector attempts to negotiate TLS with the server. The server certificate is validated against the default system trusted certificate store. You can override how the certificate gets validated using the SSLServerCert connection property.

To specify another certificate, see the SSLServerCert connection property.

CData Python Connector for BigCommerce

Firewall and Proxy

Connecting Through a Firewall or Proxy

HTTP Proxies

Note: The connector uses the system proxy settings by default, without further configuration needed. If you want to connect to other proxies, set ProxyAutoDetect to False and read further.

To authenticate to an HTTP proxy, set the following:

  • ProxyServer: the hostname or IP address of the proxy server that you want to route HTTP traffic through.
  • ProxyPort: the TCP port that the proxy server is running on.
  • ProxyAuthScheme: the authentication method the connector uses when authenticating to the proxy server.
  • ProxyUser: the username of a user account registered with the proxy server.
  • ProxyPassword: the password associated with the ProxyUser.

Other Proxies

Set the following properties:

CData Python Connector for BigCommerce

Caching Data

Caching Data

Caching data provides several benefits, including faster access to data and reducing the number of API calls, which improve performance. The connector supports a simple caching model where multiple connections can also share the cache over time. You can enable and configure caching features by setting the necessary connection properties.

Contents

The sections in this chapter detail the connector's caching functionality and link to the corresponding connection properties, as well as SQL statements.

Configuring the Cache Connection

Configuring the Cache Connection describes the properties that you can set when configuring the cache database.

Caching Metadata

Caching Metadata describes the CacheMetadata property. This property determines whether or not to cache the table metadata to a file store.

Automatically Caching Data

Automatically Caching Data describes how the connector automatically refreshes the cache when the AutoCache property is set.

Explicitly Caching Data

Explicitly Caching Data describes how you can decide what data is stored in the cache and when it is updated.

Data Type Mapping

Data Type Mapping shows the mappings between the data types configured in the schema and the data types in the database.

CData Python Connector for BigCommerce

Configuring the Cache Connection

Configuring the Caching Database

This section describes the properties for caching data to the persistent store of your choice.

CacheLocation

The CacheLocation property species the path to a file-system-based database. When caching is enabled, a file-system-based database is used by default. If CacheLocation is not specified, this database is stored at the path in Location. If neither of these connection properties are specified, the connector uses a platform-dependent default location.

CacheConnection

The CacheConnection property specifies a database driver and the connection string to the caching database.

CacheDriver and CacheProvider

Both the CacheDriver and CacheProvider properties are supported. Each specifies a database driver and the connection string to the caching database. CacheDriver is designed for Linux and MacOS; CacheProvider is Windows-based.

CData Python Connector for BigCommerce

Caching Metadata

This section describes how to enable caching metadata and how to update the metadata cache.

Before being able to query data, the connector requires relevant metadata to be retrieved. By default, metadata is cached in memory and shared across connections. But if you want to persist across processes, or if metadata requests are expensive, the solution is to cache the metadata to disk.

Enable Caching Metadata

To enable caching of metadata, set CacheMetadata = true and see Configuring the Cache Connection for instructions on how to configure your connection string. The connector caches the metadata the first time it is needed and uses the metadata cache for subsequent requests.

Update the Metadata Cache

Because metadata is cached, changes to metadata on the live source, for example, adding or removing a column or attribute, are not automatically reflected in the metadata cache. To get updates to the live metadata, you need to delete or drop the cached data.

CData Python Connector for BigCommerce

Automatically Caching Data

Automatically caching data is useful when you do not want to rebuild the cache for each query. When you query data for the first time, the connector automatically initializes and builds a cache in the background. When AutoCache = true, the connector uses the cache for subsequent query executions, resulting in faster response times.

Configuring Automatic Caching

Caching the Customers Table

The following example caches the Customers table in the file specified by the CacheLocation property of the connection string.

SELECT FirstName, LastName FROM Customers WHERE Column2 = 'Bob'

Common Use Case

A common use for automatically caching data is to improve driver performance when making repeated requests to a live data source, such as building a report or creating a visualization. With auto caching enabled, repeated requests to the same data may be executed in a short period of time, but within an allowable tolerance (CacheTolerance) of what is considered "live" data.

CData Python Connector for BigCommerce

Explicitly Caching Data

With explicit caching (AutoCache = false), you decide exactly what data is cached and when to query the cache instead of the live data. Explicit caching gives you full control over the cache contents by using CACHE Statements. This section describes some strategies to use the caching features offered by the connector.

Creating the Cache

To load data in the cache, issue the following statement.

CACHE SELECT * FROM tableName WHERE ...

Once the statement is issued, any matching data in tableName is loaded into the corresponding table.

Updating the Cache

This section describes two ways to update the cache.

Updating with the SELECT Statement

The following example shows a statement that can update modified rows and add missing rows in the cached table. However, this statement does not delete extra rows that are already in the cache. This statement only merges the new rows or updates the existing rows.

CACHE SELECT * FROM Customers WHERE Column2 = 'Bob'

Updating with the TRUNCATE Statement

The following example shows a statement that can update modified rows and add missing rows in the cached table. This statement can also delete rows in the cache table that are not present in the live data source.

  CACHE WITH TRUNCATE SELECT * FROM Customers WHERE Column2 = 'Bob'
  

Query the Data in Online or Offline Mode

This section describes how to query the data in online or offline mode.

Online: Select Cached Tables

You can use the tableName#CACHE syntax to explicitly execute queries to the cache while still online, as shown in the following example.

SELECT * FROM Customers#CACHE

Offline: Select Cached Tables

With Offline = true, SELECT statements always execute against the local cache database, regardless of whether you explicitly specify the cached table or not. Modification of the cache is disabled in Offline mode to prevent accidentally updating only the cached data. Executing a DELETE/UPDATE/INSERT statement while in Offline mode results in an exception.

The following example selects from the local cache but not the live data source because Offline = true.

SELECT * FROM Customers WHERE Column2='Bob' ORDER BY LastName ASC

Delete Data from the Cache

You can delete data from the cache by building a direct connection to the database. Note that the connector does not support manually deleting data from the cache.

Common Use Case

A common use for caching is to have an application always query the cached data and only update the cache at set intervals, such as once every day or every two hours. There are two ways in which this can be implemented:

  • AutoCache = false and Offline = false. All queries issued by the application explicitly reference the tableName#CACHE table. When the cache needs to be updated, the application executes a tableName#CACHE ... statement to bring the cached data up to date.
  • Offline = true. Caching is transparent to the application. All queries are executed against the table as normal, so most application code does not need to be aware that caching is done. To update the cached data, simply create a separate connection with Offline = false and execute a tableName#CACHE ... statement.

CData Python Connector for BigCommerce

Data Type Mapping

The connector maps types from the data source to the corresponding data type available in the chosen cache database. The following table shows the mappings between the data types configured in the schema and the data types in the database. Some schema types have synonyms which are all listed in the Schema column.

Data Type Mapping

Note: String columns can map to different data types depending on their length.

Schema .NET JDBC SQL Server Derby MySQL Oracle SQLite Access
int, integer, int32 Int32 int int INTEGER INT NUMBER integer LONG
smallint, short, int16 Int16 short smallint SMALLINT SMALLINT NUMBER integer SHORT
double, float, real Double double float DOUBLE DOUBLE NUMBER double DOUBLE
date DateTime java.sql.Date date DATE DATE DATE date DATETIME
datetime, timestamp DateTime java.sql.Date datetime TIMESTAMP DATETIME TIMESTAMP datetime DATETIME
time, timespan TimeSpan java.sql.Time time TIME TIME TIMESTAMP datetime DATETIME
string, varchar String java.lang.String If length > 4000: nvarchar(max), Otherwise: nvarchar(length)If length > 32672: LONG VARCHAR, Otherwise VARCHAR(length)If length > 255: LONGTEXT, Otherwise: VARCHAR(length)If length > 4000: CLOB, Otherwise: VARCHAR2(length)nvarchar(length)If length > 255: LONGTEXT, Otherwise: VARCHAR(length)
long, int64, bigint Int64 long bigint BIGINT BIGINT NUMBER bigint LONG
boolean, bool Boolean boolean tinyint SMALLINT BIT NUMBER tinyint BIT
decimal, numeric Decimal java.math.BigDecimal decimal DECIMAL DECIMAL DECIMAL decimal CURRENCY
uuid Guid java.util.UUID nvarchar(length) VARCHAR(length)VARCHAR(length) VARCHAR2(length)nvarchar(length) VARCHAR(length)
binary, varbinary, longvarbinary byte[] byte[] binary(1000) or varbinary(max) after SQL Server 2000, image otherwise BLOB LONGBLOB BLOB BLOB LONGBINARY

CData Python Connector for BigCommerce

Query Processing

Query Processing

CData has a client-side SQL engine built into the connector library. This enables support for the full capabilities that SQL-92 offers, including filters, aggregations, functions, etc.

For sources that do not support SQL-92, the connector offloads as much of SQL statement processing as possible to BigCommerce and then processes the rest of the query in memory (client-side). This results in optimal performance.

For data sources with limited query capabilities, the connector handles transformations of the SQL query to make it simpler for the connector. The goal is to make smart decisions based on the query capabilities of the data source to push down as much of the computation as possible. The BigCommerce Query Evaluation component examines SQL queries and returns information indicating what parts of the query the connector is not capable of executing natively.

The BigCommerce Query Slicer component is used in more specific cases to separate a single query into multiple independent queries. The client-side Query Engine makes decisions about simplifying queries, breaking queries into multiple queries, and pushing down or computing aggregations on the client-side while minimizing the size of the result set.

There's a significant trade-off in evaluating queries, even partially, client-side. There are always queries that are impossible to execute efficiently in this model, and some can be particularly expensive to compute in this manner. CData always pushes down as much of the query as is feasible for the data source to generate the most efficient query possible and provide the most flexible query capabilities.

More Information

For a full discussion of how CData handles query processing, see CData Architecture: Query Execution.

CData Python Connector for BigCommerce

Logging

Logging

Capturing connector logging can be very helpful when diagnosing error messages or other unexpected behavior.

Basic Logging

To begin capturing connector logging, set these properties:

  • Logfile: A filepath that designates the name and location of the log file.
  • Verbosity: A numerical value (1-5) that determines the amount of detail in the log. See the page in the Connection Properties section for an explanation of the five levels.
  • MaxLogFileSize: When the limit is hit, a new log is created in the same folder with the date and time appended to the end. The default limit is 100 MB. Values lower than 100 kB will use 100 kB as the value instead.
  • MaxLogFileCount: A string specifying the maximum file count of log files. When the limit is hit, a new log is created in the same folder with the date and time appended to the end and the oldest log file will be deleted. Minimum supported value is 2. A value of 0 or a negative value indicates no limit on the count.

Once these properties are set, the connector populates the log file as it carries out various tasks, such as when authentication is performed or queries are executed. If the specified file doesn't already exist, it is created.

Log Verbosity

The verbosity level determines the amount of detail that the connector reports to the Logfile. Supported Verbosity levels range from 1 to 5.

The following list describes each level:

1Setting Verbosity to 1 logs the query, the number of rows returned by it, the start of execution and the time taken, and any errors.
2Setting Verbosity to 2 logs everything included in Verbosity 1, cache queries, and additional information about the request.
3Setting Verbosity to 3 also logs HTTP headers, as well as the body of the request and the response.
4Setting Verbosity to 4 also logs transport-level communication with the data source. This includes SSL negotiation.
5Setting Verbosity to 5 also logs communication with the data source and additional details that may be helpful in troubleshooting problems. This includes interface commands.

For normal operations, Verbosity should not be set to greater than 1. At higher verbosities you can log substantial amounts of data, which can delay execution times.

To refine the logged content further by showing/hiding specific categories of information, see LogModules.

Sensitive Data

Verbosity levels of 3 and higher may capture information that you do not want shared outside of your organization. The following lists information of concern for each level:

  • Verbosity 3: The full body of the request and the response, which includes all the data returned by the connector
  • Verbosity 4: SSL certificates
  • Verbosity 5: Any extra transfer data not included at Verbosity 3, such as non human-readable binary transfer data

Note: Although we mask sensitive values, such as passwords, in the connection string and any request in the log, it is always best practice to review the logs for any sensitive information before sharing outside your organization.

Advanced Logging

You may want to refine the exact information that is recorded to the log file. This can be accomplished using the LogModules property. This property allows you to filter the logging using a semicolon-separated list of logging modules.

Example property value:

LogModules=INFO;EXEC;SSL;SQL;META;

Note that the logfile filtering triggered by the Verbosity connection property takes precedence over the filtering imposed by this connection property. This means that operations of a higher verbosity level than the level specified in the Verbosity connection property are not printed in the logfile, even if they belong to one of the modules specified in this connection property.

The available modules and submodules are:

Module Name Module Description Submodules
INFO General Information. Includes the connection string, product version (build number), and initial connection messages.
  • Connec – Information related to creating or destroying connections.
  • Messag – Generic label for messages pertaining to connections, the connection string, and product version. These messages are typically specific to the connector, rather than being received and passed along directly from the service.
EXEC Query Execution. Includes execution messages for user-written SQL queries, parsed SQL queries, and normalized SQL queries. Success/failure messages for queries and query pages appear here as well.
  • Messag – Messages pertaining to query execution. These messages are typically specific to the connector, rather than being received and passed along directly from the service.
  • Normlz – Query normalization steps. Query normalization is when the product takes the user-submitted query and rewrites the query to get the same results with optimal performance.
  • Origin – This label applies to any messages recording a user's original query (the exact, unaltered, non-normalized query executed by the user).
  • Page – Messages related to query paging.
  • Parsed – Query parsing steps. Parsing is the process of converting the user-submitted query into a standardized format for easier processing.
HTTP HTTP protocol messages. Includes HTTP requests/responses (including POST messages), as well as Kerberos related messages.
  • KERB – HTTP requests related to Kerberos.
  • Messag – Messages pertaining to HTTP protocols. These messages are typically specific to the connector, rather than being received and passed along directly from the service.
  • Unpack – This label applies to messages about zipped data being returned from the service API and unpacked by the product.
  • Res – Messages containing HTTP responses.
  • Req – Messages containing HTTP requests.
WSDL Messages pertaining to the generation of WSDL/XSD files.
SSL SSL certificate messages.
  • Certif – Messages pertaining to SSL certificates.
AUTH Authentication related failure/success messages.
  • Messag – Messages pertaining to authentication. These messages are typically specific to the connector, rather than being received and passed along directly from the service.
  • OAuth – Messages related to OAuth authentication.
  • Krbros – Kerberos-related authentication messages.
SQL Includes SQL transactions, SQL bulk transfer messages, and SQL result set messages.
  • Bulk – Messages pertaining to bulk query execution.
  • Cache – Messages related to reading row data from and writing row data to the product's cache for better performance.
  • Messag – Messages pertaining to SQL transactions. These messages are typically specific to the connector, rather than being received and passed along directly from the service.
  • ResSet – Query resultsets.
  • Transc – Messages related to handling transactions, including information about the number of jobs executed and backup table handling.
META Metadata cache and schema messages.
  • Cache – Messages related to reading from and modifying column and table definitions in the product's cache for better performance.
  • Schema – Messages related to retrieving metadata from or modifying the service schema.
  • MemSto – Messages related to writing to or reading from in-memory metadata cache.
  • Storag – Messages relating to storing metadata on disk or in an external data store, rather than in memory.
FUNC Information related to executing SQL functions.
  • Errmsg – Error messages related to executing SQL functions.
TCP Incoming and outgoing raw bytes on TCP transport layer messages.
  • Send – Raw data sent via the TCP protocol.
  • Receiv – Raw data received via the TCP protocol.
FTP Messages pertaining to the File Transfer Protocol.
  • Info – Status messages related to communication in the FTP protocol.
  • Client – Messages related to actions taken by the FTP client (the product) during FTP communication.
  • Server – Messages related to actions taken by the FTP server during FTP communication.
SFTP Messages pertaining to the Secure File Transfer Protocol.
  • Info – Status messages related to communication in the SFTP protocol.
  • To_Server – Messages related to actions taken by the SFTP client (the product) during SFTP communication.
  • From_Server – Messages related to actions taken by the SFTP server during SFTP communication.
POP Messages pertaining to data transferred via the Post Office Protocol.
  • Client – Messages related to actions taken by the POP client (the product) during POP communication.
  • Server – Messages related to actions taken by the POP server during POP communication.
  • Status – Status messages related to communication in the POP protocol.
SMTP Messages pertaining to data transferred via the Simple Mail Transfer Protocol.
  • Client – Messages related to actions taken by the SMTP client (the product) during SMTP communication.
  • Server – Messages related to actions taken by the SMTP server during SMTP communication.
  • Status – Status messages related to communication in the SMTP protocol.
CORE Messages relating to various internal product operations not covered by other modules.
DEMN Messages related to SQL remoting.
CLJB Messages about bulk data uploads (cloud job).
  • Commit – Submissions for bulk data uploads.
SRCE Miscellaneous messages produced by the product that don't belong in any other module.
TRANCE Advanced messages concerning low-level product operations.

CData Python Connector for BigCommerce

Exception Handling

Exception Handling

Exceptions can be surfaced from either the API or the CData Python Connector for BigCommerce. Each exception will have an error code, an error message, and a SQL state.

Error Codes

The error code classifies the type of error.

0 NONE Used for unclassified errors and internally handled errors. This code also covers data source-specific errors that do not fit in any specific category.
65537 TCP_UNKNOWN_HOST Unable to resolve a hostname (DNS failure).
65538 TCP_CONNECTION_REFUSED Could not connect to the remote port.
65539 TCP_AUTH_FAILED Login failed when using a binary authentication protocol. Use this for auth errors when the protocol is not HTTP (LDAP, SASL, Kerberos, ...).
65540 TCP_TIMEOUT Did not receive a response after sending a request to the server.
65541 TCP_PROTOCOL For wire protocol drivers. Either the server sent a bad packet that we are unable to process, or we cannot construct a packet to send.
131073 TLS_SERVER_UNTRUSTED Could not verify SSL server certificate.
131074 TLS_CLIENT_UNTRUSTED Server did not accept the client certificate we sent.
196609 OAUTH_DECRYPT_FAILED OAuthEncryptKey did not decrypt the OAuthSettings file.
196610 OAUTH_MISSING_CLIENT_INFO OAuthClientId / OAuthClientSecret / OAuthJWTCert is missing.
196611 OAUTH_MISSING_PROP General OAuth property missing. OAUTH_MISSING_CLIENT_INFO is used for missing client ID/secret and JWT cert.
196612 OAUTH_NO_ACCESS_TOKEN Unable to retrieve access token. Only use this when getting a token in GetOAuthAccessToken / RefreshOAuthAccessToken.
196613 OAUTH_TOKEN_EXPIRED The access token expired. Normally used with a RefreshOAuth/OAuthException behavior.
196614 OAUTH_INVALID_PROP OAuth property has an invalid value. OAUTH_MISSING_CLIENT_INFO / OAUTH_MISSING_PROP is used if the value is not set.
262145 HTTP_REQUEST_TIMEOUT Did not receive a response from the HTTP server.
262146 HTTP_CLIENT_ERROR Generic HTTP 4xx error. Only use for 4xx errors not covered by other codes.
262147 HTTP_AUTH_FAILED HTTP 401 error.
262148 HTTP_LIMIT_EXCEEDED HTTP 429 error.
262149 HTTP_SERVER_ERROR HTTP 5xx error.
262150 HTTP_NOT_FOUND_ERROR HTTP 404 error.
327681 CORE_TIMEOUT General timeout. Not related to a specific network request.
327682 CORE_OP_NOT_ALLOWED Operation blocked by provider permissions.
327683 CORE_CONNECTION_CONFIG Connection configuration is not valid.
327684 CORE_SERIALIZE Failed to encode data into a specific format (XML, JSON, CSV, ...).
327685 CORE_DESERIALIZE Failed to decode data from a specific format (XML, JSON, CSV, ...).
393217 SQL_SYNTAX_ERROR Unable to parse a SQL query.
393218 SQL_MISSING_COLUMNS Query did not include required columns.
393219 SQL_MISSING_PARAMS Stored procedure call did not include required parameters.
393220 SQL_QUERY_NOT_SUPPORTED A part of the query is not allowed in the current context.
458753 SSH_SERVER_UNTRUSTED Could not verify SSH server.
524289 STORAGE_LIST_EXCEPTION Issue listing storage resources.
524290 STORAGE_RESOURCE_NOT_FOUND Issue finding storage resources.
524291 STORAGE_ROOT_RESOURCE_NOT_FOUND The root resource (bucket/share/drive) was not found; cannot create it in flat file drivers.
524292 STORAGE_RESOURCE_NOT_A_DIRECTORY Storage resource is not a directory.
524293 STORAGE_RESOURCE_NOT_A_FILE Storage resource is not a file.
524294 STORAGE_PERMISSIONS_DENIED Storage permissions denied.

SQL State

The SQL state is used when throwing generic provider errors to the wrapper and indicates the success or failure of a call.

Some of the common SQL states are listed below:

07007 REQUIRED_CLAUSE Class Code 07: Dynamic SQL Error.
08001 OPEN_CONNECTION Class Code 08: Connection Exception. The connection was unable to be established to the application server or other server.
08004 REJECT_CONNECTION The application server rejected establishment of the connection.
42501 PRIVILEGE_IDENTIFIED_OBJECT Class Code 42: Syntax Error or Access Rule Violation. The authorization ID does not have the privilege to perform the specified operation on the identified object.
42506 AUTH_FAILED Owner authorization failure occurred.
42601 SQL_SYNTAX A character, token, or clause is invalid or missing.

Error Message

The error message provides more detailed reasoning about why the error occurred. It provides an explanation of the issue, and may include steps on how to resolve it.

CData Python Connector for BigCommerce

SQL Compliance

The CData Python Connector for BigCommerce supports several operations on data, including querying, deleting, modifying, and inserting.

SELECT Statements

See SELECT Statements for a syntax reference and examples.

See Data Model for information on the capabilities of the BigCommerce API.

INSERT Statements

See INSERT Statements for a syntax reference and examples.

UPDATE Statements

The primary key Id is required to update a record. See UPDATE Statements for a syntax reference and examples.

DELETE Statements

The primary key Id is required to delete a record. See DELETE Statements for a syntax reference and examples.

CACHE Statements

CACHE statements allow granular control over the connector's caching functionality. For a syntax reference and examples, see CACHE Statements.

For more information on the caching feature, see Caching Data.

EXECUTE Statements

Use EXECUTE or EXEC statements to execute stored procedures. See EXECUTE Statements for a syntax reference and examples.

Names and Quoting

  • Table and column names are considered identifier names; as such, they are restricted to the following characters: [A-Z, a-z, 0-9, _:@].
  • To use a table or column name with characters not listed above, the name must be quoted using square brackets ([name]) in any SQL statement.
  • Parameter names can optionally start with the @ symbol (e.g., @p1 or @CustomerName) and cannot be quoted.
  • Strings must be quoted using single quotes (e.g., 'John Doe').

CData Python Connector for BigCommerce

SQL Functions

The connector provides functions that are similar to those that are available with most standard databases. These functions are implemented in the CData provider engine and thus are available across all data sources with the same consistent API. Three categories of functions are available: string, date, and math.

The connector interprets all SQL function inputs as either strings or column identifiers, so you need to escape all literals as strings, with single quotes. For example, contrast the SQL Server syntax and connector syntax for the DATENAME function:

  • SQL Server:
    SELECT DATENAME(yy,GETDATE())
  • connector:
    SELECT DATENAME('yy',GETDATE())

String Functions

These functions perform string manipulations and return a string value. See STRING Functions for more details.

Date Functions

These functions perform date and date time manipulations. See DATE Functions for more details.

Math Functions

These functions provide mathematical operations. See MATH Functions for more details.

CData Python Connector for BigCommerce

STRING Functions

ASCII(character_expression)

Returns the ASCII code value of the left-most character of the character expression.

  • character_expression: The character expression.

                      SELECT ASCII('0');
                      --  Result: 48
                    

BASE64_ENCODE(input_binary)

Returns the Base64-encoded string form of a binary input.

  • input_binary: The binary value to encode.

                        SELECT BASE64_ENCODE(BinaryData);
                    -- Result: 'QmFzZTY0RW5jb2RlZA=='
                    

BASE64_DECODE(input_string)

Returns the binary result of decoding a Base64-encoded string.

  • input_string: The Base64-encoded string.

                        SELECT BASE64_DECODE('QmFzZTY0RW5jb2RlZA==');
                    -- Result: (binary output)
                    

CHAR(integer_expression)

Converts the integer ASCII code to the corresponding character.

  • integer_expression: The integer from 0 through 255.

                      SELECT CHAR(48);
                      -- Result: '0'
                    

CHARINDEX(expressionToFind ,expressionToSearch [,start_location ])

Returns the starting position of the specified expression in the character string.

  • expressionToFind: The character expression to find.
  • expressionToSearch: The character expression, typically a column, to search.
  • start_location: An optional character position to start searching for expressionToFind in expressionToSearch.

                      SELECT CHARINDEX('456', '0123456');
                      -- Result: 4

                      SELECT CHARINDEX('456', '0123456', 5);
                      -- Result: -1
                    

CHAR_LENGTH(character_expression),

Returns the number of UTF-8 characters present in the expression.

  • character_expression: The set of characters to be evaluated for length.

				 SELECT CHAR_LENGTH('sample text') FROM Account LIMIT 1
				 -- Result: 11			
				

CONCAT(string_value1, string_value2, ..., string_valueN)

Returns the string that is the concatenation of two or more string values.

  • string_value1: The first string to be concatenated.
  • string_value2: The second string to be concatenated.
  • string_valueN: (optional) Any additional strings to be concatenated.

                      SELECT CONCAT('Hello, ', 'world!');
                      -- Result: 'Hello, world!'
                    

CONTAINS(expressionToSearch, expressionToFind)

Returns 1 if expressionToFind is found within expressionToSearch; otherwise, 0.

  • expressionToSearch: The character expression, typically a column, to search.
  • expressionToFind: The character expression to find.

                      SELECT CONTAINS('0123456', '456');
                      -- Result: 1

                      SELECT CONTAINS('0123456', 'Not a number');
                      -- Result: 0
                    

ENDSWITH(character_expression, character_suffix)

Returns 1 if character_expression ends with character_suffix; otherwise, 0.

  • character_expression: The character expression.
  • character_suffix: The character suffix to search for.

                      SELECT ENDSWITH('0123456', '456');
                      -- Result: 1

                      SELECT ENDSWITH('0123456', '012');
                      -- Result: 0
                    

FILESIZE(uri)

Returns the number of bytes present in the file at the specified file path.

  • uri: The path of the file from which to read the size.

				SELECT FILESIZE('C:/Users/User1/Desktop/myfile.txt');
				-- Result: 23684
				

FORMAT(value [, parseFormat], format )

Returns the value formatted with the specified format.

  • value: The string to format.
  • format: The string specifying the output syntax of the date or numeric format.
  • parseFormat: The string specifying the input syntax of the date value. Not applicable to numeric types.

                      SELECT FORMAT(12.34, '#');
                      -- Result: 12

                      SELECT FORMAT(12.34, '#.###');
                      -- Result: 12.34

                      SELECT FORMAT(1234, '0.000E0');
                      -- Result: 1.234E3
                      
                      SELECT FORMAT('2019/01/01', 'yyyy-MM-dd');
                      -- Result: 2019-01-01
                      
                      SELECT FORMAT('20190101', 'yyyyMMdd', 'yyyy-MM-dd');
                      -- Result: '2019-01-01'
                    

HASHBYTES(algorithm, value)

Returns the hash of the input value as a byte array using the given algorithm. The supported algorithms are MD5, SHA1, SHA2_256, SHA2_512, SHA3_224, SHA3_256, SHA3_384, and SHA3_512.

  • algorithm: The algorithm to use for hashing. Must be one of MD5, SHA1, SHA2_256, SHA2_512, SHA3_224, SHA3_256, SHA3_384, or SHA3_512.
  • value: The value to hash. Must be either a string or byte array.

                      SELECT HASHBYTES('MD5', 'Test');
                      -- Result (byte array): 0x0CBC6611F5540BD0809A388DC95A615B
                    

INDEXOF(expressionToSearch, expressionToFind [,start_location ])

Returns the starting position of the specified expression in the character string.

  • expressionToSearch: The character expression, typically a column, to search.
  • expressionToFind: The character expression to find.
  • start_location: An optional character position to start searching for expressionToFind in expressionToSearch.

                      SELECT INDEXOF('0123456', '456');
                      -- Result: 4

                      SELECT INDEXOF('0123456', '456', 5);
                      -- Result: -1
                    

ISALPHABETIC(character_expression)

Returns 1 if the character expression consists only of alphabetic characters; otherwise, 0.

  • character_expression: The string expression to evaluate.

                      SELECT ISALPHABETIC('Hello');
                      -- Result: 1

                      SELECT ISALPHABETIC('Hello123');
                      -- Result: 0

                      SELECT ISALPHABETIC('Hello!');
                      -- Result: 0
                    

ISALPHANUMERIC(character_expression)

Returns 1 if the character expression consists only of alphabetic and numeric characters; otherwise, 0.

  • character_expression: The string expression to evaluate.

                      SELECT ISALPHANUMERIC('Hello123');
                      -- Result: 1

                      SELECT ISALPHANUMERIC('123');
                      -- Result: 1

                      SELECT ISALPHANUMERIC('Hello.123');
                      -- Result: 0
                    

ISNUMERIC(character_expression)

Returns 1 if the character expression consists only of numeric digits and up to one decimal point; otherwise, 0.

  • character_expression: The string expression to evaluate.

                      SELECT ISNUMERIC('123');
                      -- Result: 1

                      SELECT ISNUMERIC('123.45');
                      -- Result: 1

                      SELECT ISNUMERIC('123.45.67');
                      -- Result: 0

                      SELECT ISNUMERIC('12a3');
                      -- Result: 0
                    

JSON_EXTRACT(json, jsonpath)

Selects any value in a JSON array or object. The path to the array is specified in the jsonpath argument. Return value is numeric or null.

  • json: The JSON document to extract.
  • jsonpath: The XPath used to select the nodes. The JSONPath must be a string constant. The values of the nodes selected will be returned in a token-separated list.

                      SELECT JSON_EXTRACT('{"test": {"data": 1}}', '$.test');
                      -- Result: '{"data":1}'

                      SELECT JSON_EXTRACT('{"test": {"data": 1}}', '$.test.data');
                      -- Result: 1

                      SELECT JSON_EXTRACT('{"test": {"data": [1, 2, 3]}}', '$.test.data[1]');
                      -- Result: 2
                    

LEFT ( character_expression , integer_expression )

Returns the specified number of characters counting from the left of the specified string.

  • character_expression: The character expression.
  • integer_expression: The positive integer that specifies how many characters will be returned counting from the left of character_expression.

                      SELECT LEFT('1234567890', 3);
                      -- Result: '123'
                    

LEN(string_expression)

Returns the number of characters of the specified string expression.

  • string_expression: The string expression.

                      SELECT LEN('12345');
                      -- Result: 5
                    

LOCATE(substring,string)

Returns an integer representing how many characters into the string the substring appears.

  • substring: The substring to find inside larger string.
  • string: The larger string that is searched for the substring.
  • start locations: An optional integer that sets the character position (offset) from which to start searching.

				SELECT LOCATE('sample','XXXXXsampleXXXXX');
				-- Result: 6

                SELECT LOCATE('sample', 'XXXXXsampleXXXXX', 7)
                -- Result: 0
				

LOWER ( character_expression )

Returns the character expression with the uppercase character data converted to lowercase.

  • character_expression: The character expression.

                      SELECT LOWER('MIXED case');
                      -- Result: 'mixed case'
                    

LTRIM(character_expression)

Returns the character expression with leading blanks removed.

  • character_expression: The character expression.

                      SELECT LTRIM('     trimmed');
                      -- Result: 'trimmed'
                    

MASK(string_expression, mask_character [, start_index [, end_index ]])

Replaces the characters between start_index and end_index with the mask_character within the string.

  • string_expression: The string expression to be searched.
  • mask_character: The character to mask with.
  • start_index: The optional number of characters to leave unmasked at beginning of string. Defaults to 0.
  • end_index: The optional number of characters to leave unmasked at end of string. Defaults to 0.

                        SELECT MASK('1234567890','*',);
                        -- Result: '**********'
                        SELECT MASK('1234567890','*', 4);
                        -- Result: '1234******'
                        SELECT MASK('1234567890','*', 4, 2);
                        -- Result: '1234****90'  
                    

NCHAR(integer_expression)

Returns the Unicode character with the specified integer code as defined by the Unicode standard.

  • integer_expression: The integer from 0 through 65535 (0 through xFFFF).

OCTET_LENGTH(character_expression),

Returns the number of bytes present in the expression.

  • character_expression: The set of characters to be be evaluated.

				 SELECT OCTET_LENGTH('text') FROM Account LIMIT 1
				 -- Result: 4
				

PATINDEX(pattern, expression)

Returns the starting position of the first occurrence of the pattern in the expression. Returns 0 if the pattern is not found.

  • pattern: The character expression that contains the sequence to be found. The wild-card character % can be used only at the start or end of the expression.
  • expression: The expression, typically a column, to search for the pattern.

                      SELECT PATINDEX('123%', '1234567890');
                      -- Result: 1

                      SELECT PATINDEX('%890', '1234567890');
                      -- Result: 8

                      SELECT PATINDEX('%456%', '1234567890');
                      -- Result: 4
                    

POSITION(expressionToFind IN expressionToSearch)

Returns the starting position of the specified expression in the character string.

  • expressionToFind: The character expression to find.
  • expressionToSearch: The character expression, typically a column, to search.

                      SELECT POSITION('456' IN '123456');
                      -- Result: 4

                      SELECT POSITION('x' IN '123456');
                      -- Result: 0
                    

QUOTENAME(character_string [, quote_character])

Returns a valid SQL Server-delimited identifier by adding the necessary delimiters to the specified Unicode string.

  • character_string: The string of Unicode character data. The string is limited to 128 characters. Inputs greater than 128 characters return null.
  • quote_character: An optional single character to be used as the delimiter. These include:
    • a single quotation mark (')
    • a left or right bracket ([])
    • a double quotation mark (")
    • a left or right parenthesis ( () )
    • a greater or less than sign (><)
    • a left or right brace ({})
    • a backtick (`)

    If quote_character is not specified brackets are used. If an unacceptable character is supplied, it returns NULL.


                      SELECT QUOTENAME('table_name');
                      -- Result: '[table_name]'

                      SELECT QUOTENAME('table_name', '"');
                      -- Result: '"table_name"'

                      SELECT QUOTENAME('table_name', '[');
                      -- Result: '[table_name]'
                    

REGEXP_REPLACE(expr, pattern [, replacement [, position [, occurrence [, match_type]]]])

Replaces occurrences of a regular expression pattern in the input string with a specified value and returns the resulting string.

  • expr: The string expression to be searched.
  • pattern: The regular expression pattern to match.
  • replacement: (optional) The string to replace each matched occurrence of pattern with. Supports backreferences \1 through \9 and escape sequences \n, \r, \t, and \\. By default, this argument is an empty string, meaning matched portions are removed from the output string.
  • position: (optional) The 1-based starting position used when searching for regular expression matches in expr. The default is 1. All characters prior to the starting position are included in the output string unaltered. Skipped characters are ignored when calculating regular expression matches, even if they match pattern.
  • occurrence: (optional) Specifies whether all occurrences of pattern,, or only a specific occurrence of pattern are replaced. The default is 0, which means all occurrences of pattern are replaced with replacement. Set to 1 to only replace the first instance of the pattern; 2 to replace the second; etc.
  • match_type: (optional) Modifiers used to customize matching behavior. Supported values are: 'c' (case-sensitive, default), 'i' (case-insensitive), 'm' (multiline), 'n' (dot matches newline), 'x' (extended mode). These can be freely combined by including the letters back to back. For example, 'im' applies the functionality of both 'i' and 'm'. The regular expression syntax used is that of the Extended mode ('x') ignores whitespace and allows inline comments. If the pattern needs to match a literal space, it must be explicitly escaped.

                      SELECT REGEXP_REPLACE('abc123def456', '\d+', 'NUM');
                      -- Result: 'abcNUMdefNUM'

                      SELECT REGEXP_REPLACE('Hello\nHELLO\nhello', '^hello', 'X', 1, 0, 'im');
                      -- Result: 'X\nX\nX'
                    

REPLACE(string_expression, string_pattern, string_replacement)

Replaces all occurrences of a string with another string.

  • string_expression: The string expression to be searched. This can be a character or binary data type.
  • string_pattern: The substring to be found. Cannot be an empty string.
  • string_replacement: The replacement string.

                      SELECT REPLACE('1234567890', '456', '|');
                      -- Result: '123|7890'

                      SELECT REPLACE('123123123', '123', '.');
                      -- Result: '...'

                      SELECT REPLACE('1234567890', 'a', 'b');
                      -- Result: '1234567890'
                    

REPLICATE ( string_expression ,integer_expression )

Repeats the string value the specified number of times.

  • string_expression: The string to replicate.
  • integer_expression: The repeat count.

                      SELECT REPLACE('x', 5);
                      -- Result: 'xxxxx'
                    

REVERSE ( string_expression )

Returns the reverse order of the string expression.

  • string_expression: The string.

                      SELECT REVERSE('1234567890');
                      -- Result: '0987654321'
                    

RIGHT ( character_expression , integer_expression )

Returns the right part of the string with the specified number of characters.

  • character_expression: The character expression.
  • integer_expression: The positive integer that specifies how many characters of the character expression will be returned.

                      SELECT RIGHT('1234567890', 3);
                      -- Result: '890'
                    

RTRIM(character_expression)

Returns the character expression after it removes trailing blanks.

  • character_expression: The character expression.

                      SELECT RTRIM('trimmed     ');
                      -- Result: 'trimmed'
                    

SOUNDEX(character_expression)

Returns the four-character Soundex code, based on how the string sounds when spoken.

  • character_expression: The alphanumeric expression of character data.

                      SELECT SOUNDEX('smith');
                      -- Result: 'S530'
                    

SPACE(repeatcount)

Returns the string that consists of repeated spaces.

  • repeatcount: The number of spaces.

                      SELECT SPACE(5);
                      -- Result: '     '
                    

SPLIT(string, delimiter, offset)

Returns a section of the string between to delimiters.

  • string: The string to split.
  • delimiter: The character to split the string with.
  • offset: The number of the split to return. Positive numbers are treated as offsets from the left, and negative numbers are treated as offsets from the right.

                      SELECT SPLIT('a/b/c/d', '/', 1);
                      -- Result: 'a'
                      SELECT SPLIT('a/b/c/d', '/', -2);
                      -- Result: 'c'
                    

STARTSWITH(character_expression, character_prefix)

Returns 1 if character_expression starts with character_prefix; otherwise, 0.

  • character_expression: The character expression.
  • character_prefix: The character prefix to search for.

                      SELECT STARTSWITH('0123456', '012');
                      -- Result: 1

                      SELECT STARTSWITH('0123456', '456');
                      -- Result: 0
                    

STR ( float_expression [ , integer_length [ , integer_decimal ] ] )

Returns the character data converted from the numeric data. For example, STR(123.45, 6, 1) returns 123.5.

  • float_expression: The float expression.
  • length: The optional total length to return. This includes decimal point, sign, digits, and spaces. The default is 10.
  • decimal: The optional number of places to the right of the decimal point. The decimal must be less than or equal to 16.

                      SELECT STR('123.456');
                      -- Result: '123'

                      SELECT STR('123.456', 2);
                      -- Result: '**'

                      SELECT STR('123.456', 10, 2);
                      -- Result: '123.46'
                    

STUFF(character_expression , integer_start , integer_length , replaceWith_expression)

Inserts a string into another string. It deletes the specified length of characters in the first string at the start position and then inserts the second string into the first string at the start position.

  • character_expression: The string expression.
  • start: The integer value that specifies the location to start deletion and insertion. If start or length is negative, null is returned. If start is longer than the string to be modified, character_expression, null is returned.
  • length: The integer that specifies the number of characters to delete. If length is longer than character_expression, deletion occurs up to the last character in replaceWith_expression.
  • replaceWith_expression: The expression of character data that will replace length characters of character_expression beginning at the start value.

                      SELECT STUFF('1234567890', 3, 2, 'xx');
                      -- Result: '12xx567890'
                    

SUBSTRING(string_value FROM start FOR length)

Returns the part of the string with the specified length; starts at the specified index.

  • string_value: The character string.
  • start: The positive integer that specifies the start index of characters to return.
  • length: Optional. The positive integer that specifies how many characters will be returned.

                      SELECT SUBSTRING('1234567890' FROM 3 FOR 2);
                      -- Result: '34'

                      SELECT SUBSTRING('1234567890' FROM 3);
                      -- Result: '34567890'
                    
You can also drop the FROM and FOR clauses:
                    SELECT SUBSTRING('1234567890', 3, 2)
                    --Result: '34'
                    SELECT SUBSTRING('1234567890', 3)
                    --Result: '34567890'
                    

TEXT_ENCODE(input_string, charset)

Returns binary output by encoding a string using the specified character set.

  • input_string: The plain text string.
  • charset: The character set to use, such as 'UTF-8', 'ISO-8859-1'.

                    SELECT TEXT_ENCODE('Café', 'UTF-8');
                    -- Result: (binary output)
                    

TEXT_DECODE(input_binary, charset)

Returns a string decoded from binary data using the specified character set.

  • input_binary: The binary value to decode.
  • charset: The character set used for decoding.

                    SELECT TEXT_DECODE(BinaryData, 'UTF-8');
                    -- Result: 'Café'
                    

TOSTRING(string_value1)

Converts the value of this instance to its equivalent string representation.

  • string_value1: The string to be converted.

                      SELECT TOSTRING(123);
                      -- Result: '123'

                      SELECT TOSTRING(123.456);
                      -- Result: '123.456'

                      SELECT TOSTRING(null);
                      -- Result: ''
                    

TRIM(trimspec trimchar FROM string_value)

Returns the character expression with leading and/or trailing blanks removed.

  • trimspec: Optional. If included must be one of the keywords BOTH, LEADING or TRAILING.
  • trimchar: Optional. If included should be a one-character string value.
  • string_value: The string value to trim.

                      SELECT TRIM('     trimmed     ');
                      -- Result: 'trimmed'

                      SELECT TRIM(LEADING FROM '     trimmed     ');
                      -- Result: 'trimmed     '

                      SELECT TRIM('-' FROM '-----trimmed-----');
                      -- Result: 'trimmed'

                      SELECT TRIM(BOTH '-' FROM '-----trimmed-----');
                      -- Result: 'trimmed'

                      SELECT TRIM(TRAILING '-' FROM '-----trimmed-----');
                      -- Result: '-----trimmed'
                    

UNICODE(ncharacter_expression)

Returns the integer value defined by the Unicode standard of the first character of the input expression.

  • ncharacter_expression: The Unicode character expression.

UPPER ( character_expression )

Returns the character expression with lowercase character data converted to uppercase.

  • character_expression: The character expression.

                      SELECT UPPER('MIXED case');
                      -- Result: 'MIXED CASE'
                    

XML_EXTRACT(xml, xpath [, separator])

Extracts an XML document using the specified XPath to flatten the XML. A comma is used to separate the outputs by default, but this can be changed by specifying the third parameter.

  • xml: The XML document to extract.
  • xpath: The XPath used to select the nodes. The nodes selected will be returned in a token-separated list.
  • separator: The optional token used to separate the items in the flattened response. If this is not specified, the separator will be a comma.

                      SELECT XML_EXTRACT('<vowels><ch>a</ch><ch>e</ch><ch>i</ch><ch>o</ch><ch>u</ch></vowels>', '/vowels/ch');
                      -- Result: 'a,e,i,o,u'

                      SELECT XML_EXTRACT('<vowels><ch>a</ch><ch>e</ch><ch>i</ch><ch>o</ch><ch>u</ch></vowels>', '/vowels/ch', ';');
                      -- Result: 'a;e;i;o;u'
                    

CData Python Connector for BigCommerce

MATH Functions

ABS ( numeric_expression )

Returns the absolute (positive) value of the specified numeric expression.

  • numeric_expression: The expression of an indeterminate numeric data type except for the bit data type.

                      SELECT ABS(15);
                      -- Result: 15

                      SELECT ABS(-15);
                      -- Result: 15
                    

ACOS ( float_expression )

Returns the arc cosine, the angle in radians whose cosine is the specified float expression.

  • float_expression: The float expression that specifies the cosine of the angle to be returned. Values outside the range from -1 to 1 return null.

                      SELECT ACOS(0.5);
                      -- Result: 1.0471975511966
                    

ASIN ( float_expression )

Returns the arc sine, the angle in radians whose sine is the specified float expression.

  • float_expression: The float expression that specifies the sine of the angle to be returned. Values outside the range from -1 to 1 return null.

                      SELECT ASIN(0.5);
                      -- Result: 0.523598775598299
                    

ATAN ( float_expression )

Returns the arc tangent, the angle in radians whose tangent is the specified float expression.

  • float_expression: The float expression that specifies the tangent of the angle to be returned.

                      SELECT ATAN(10);
                      -- Result: 1.47112767430373
                    

ATN2 ( float_expression1 , float_expression2 )

Returns the angle in radians between the positive x-axis and the ray from the origin to the point (y, x) where x and y are the values of the two specified float expressions.

  • float_expression1: The float expression that is the y-coordinate.
  • float_expression2: The float expression that is the x-coordinate.

                      SELECT ATN2(1, 1);
                      -- Result: 0.785398163397448
                    

CEILING ( numeric_expression ) or CEIL( numeric_expression )

Returns the smallest integer greater than or equal to the specified numeric expression.

  • numeric_expression: The expression of an indeterminate numeric data type except for the bit data type.

                      SELECT CEILING(1.3);
                      -- Result: 2

                      SELECT CEILING(1.5);
                      -- Result: 2

                      SELECT CEILING(1.7);
                      -- Result: 2
                    

COS ( float_expression )

Returns the trigonometric cosine of the specified angle in radians in the specified expression.

  • float_expression: The float expression of the specified angle in radians.

                      SELECT COS(1);
                      -- Result: 0.54030230586814
                    

COT ( float_expression )

Returns the trigonometric cotangent of the angle in radians specified by float_expression.

  • float_expression: The float expression of the angle in radians.

                      SELECT COT(1);
                      -- Result: 0.642092615934331
                    

DEGREES ( numeric_expression )

Returns the angle in degrees for the angle specified in radians.

  • numeric_expression: The angle in radians, an expression of an indeterminate numeric data type except for the bit data type.

                      SELECT DEGREES(3.1415926);
                      -- Result: 179.999996929531
                    

EXP ( float_expression )

Returns the exponential value of the specified float expression. For example, EXP(LOG(20)) is 20.

  • float_expression: The float expression.

                      SELECT EXP(2);
                      -- Result: 7.38905609893065
                    

EXPR ( expression )

Evaluates the expression.

  • expression: The expression. Operators allowed are +, -, *, /, ==, !=, >, <, >=, and <=.

                      SELECT EXPR('1 + 2 * 3');
                      -- Result: 7

                      SELECT EXPR('1 + 2 * 3 == 7');
                      -- Result: true
                    

FLOOR ( numeric_expression )

Returns the largest integer less than or equal to the numeric expression.

  • numeric_expression: The expression of an indeterminate numeric data type except for the bit data type.

                      SELECT FLOOR(1.3);
                      -- Result: 1

                      SELECT FLOOR(1.5);
                      -- Result: 1

                      SELECT FLOOR(1.7);
                      -- Result: 1
                    

GREATEST(int1,int2,....)

Returns the greatest of the supplied integers.

				SELECT GREATEST(3,5,8,10,1)
				-- Result: 10			
				

HEX(value)

Returns a the equivalent hex for the input value.

  • value: A string or numerical value to be converted into hex.

				SELECT HEX(866849198);
				-- Result: 33AB11AE
				
				SELECT HEX('Sample Text');
				-- Result: 53616D706C652054657874
				

JSON_AVG(json, jsonpath)

Computes the average value of a JSON array within a JSON object. The path to the array is specified in the jsonpath argument. Return value is numeric or null.

  • json: The JSON document to compute.
  • jsonpath: The JSONPath used to select the nodes. [x], [2..], [..8], or [1..12] are accepted. [x] selects all nodes.

                      SELECT JSON_AVG('[1,2,3,4,5]', '$[x]');
                      -- Result: 3

                      SELECT JSON_AVG('{"test": {"data": [1,2,3,4,5]}}', '$.test.data[x]');
                      -- Result: 3

                      SELECT JSON_AVG('{"test": {"data": [1,2,3,4,5]}}', '$.test.data[3..]');
                      -- Result: 4.5
                    

JSON_COUNT(json, jsonpath)

Returns the number of elements in a JSON array within a JSON object. The path to the array is specified in the jsonpath argument. Return value is numeric or null.

  • json: The JSON document to compute.
  • jsonpath: The JSONPath used to select the nodes. [x], [2..], [..8], or [1..12] are accepted. [x] selects all nodes.

                      SELECT JSON_COUNT('[1,2,3,4,5]', '$[x]');
                      -- Result: 5

                      SELECT JSON_COUNT('{"test": {"data": [1,2,3,4,5]}}', '$.test.data[x]');
                      -- Result: 5

                      SELECT JSON_COUNT('{"test": {"data": [1,2,3,4,5]}}', '$.test.data[3..]');
                      -- Result: 2
                    

JSON_MAX(json, jsonpath)

Gets the maximum value in a JSON array within a JSON object. The path to the array is specified in the jsonpath argument. Return value is numeric or null.

  • json: The JSON document to compute.
  • jsonpath: The JSONPath used to select the nodes. [x], [2..], [..8], or [1..12] are accepted. [x] selects all nodes.

                      SELECT JSON_MAX('[1,2,3,4,5]', '$[x]');
                      -- Result: 5

                      SELECT JSON_MAX('{"test": {"data": [1,2,3,4,5]}}', '$.test.data[x]');
                      -- Result: 5

                      SELECT JSON_MAX('{"test": {"data": [1,2,3,4,5]}}', '$.test.data[..3]');
                      -- Result: 4
                    

JSON_MIN(json, jsonpath)

Gets the minimum value in a JSON array within a JSON object. The path to the array is specified in the jsonpath argument. Return value is numeric or null.

  • json: The JSON document to compute.
  • jsonpath: The JSONPath used to select the nodes. [x], [2..], [..8], or [1..12] are accepted. [x] selects all nodes.

                      SELECT JSON_MIN('[1,2,3,4,5]', '$[x]');
                      -- Result: 1

                      SELECT JSON_MIN('{"test": {"data": [1,2,3,4,5]}}', '$.test.data[x]');
                      -- Result: 1

                      SELECT JSON_MIN('{"test": {"data": [1,2,3,4,5]}}', '$.test.data[3..]');
                      -- Result: 4
                    

JSON_SUM(json, jsonpath)

Computes the summary value in JSON according to the JSONPath expression. Return value is numeric or null.

  • json: The JSON document to compute.
  • jsonpath: The JSONPath used to select the nodes. [x], [2..], [..8], or [1..12] are accepted. [x] selects all nodes.

                      SELECT JSON_SUM('[1,2,3,4,5]', '$[x]');
                      -- Result: 15

                      SELECT JSON_SUM('{"test": {"data": [1,2,3,4,5]}}', '$.test.data[x]');
                      -- Result: 15

                      SELECT JSON_SUM('{"test": {"data": [1,2,3,4,5]}}', '$.test.data[3..]');
                      -- Result: 9
                    

LEAST(int1,int2,....)

Returns the least of the supplied integers.

				SELECT LEAST(3,5,8,10,1)
				-- Result: 1			
				

LOG ( float_expression [, base ] )

Returns the natural logarithm of the specified float expression.

  • float_expression: The float expression.
  • base: The optional integer argument that sets the base for the logarithm.

                      SELECT LOG(7.3890560);
                      -- Result: 1.99999998661119
                    

LOG10 ( float_expression )

Returns the base-10 logarithm of the specified float expression.

  • float_expression: The expression of type float.

                      SELECT LOG10(10000);
                      -- Result: 4
                    

MOD(dividend,divisor)

Returns the integer value associated with the remainder when dividing the dividend by the divisor.

  • dividend: The number to take the modulus of.
  • divisor: The number to divide the dividend by when determining the modulus.

				SELECT MOD(10,3);
				-- Result: 1
				

NEGATE(real_number)

Returns the opposite to the real number input.

  • real_number: The real number to find the opposite of.

				SELECT NEGATE(10);
				-- Result: -10
				
				SELECT NEGATE(-12.4)
				--Result: 12.4
				

PI ( )

Returns the constant value of pi.

                  SELECT PI()
                  -- Result: 3.14159265358979 
                

POWER ( float_expression , y )

Returns the value of the specified expression raised to the specified power.

  • float_expression: The float expression.
  • y: The power to raise float_expression to.

                      SELECT POWER(2, 10);
                      -- Result: 1024

                      SELECT POWER(2, -2);
                      -- Result: 0.25
                    

RADIANS ( float_expression )

Returns the angle in radians of the angle in degrees.

  • float_expression: The degrees of the angle as a float expression.

                      SELECT RADIANS(180);
                      -- Result: 3.14159265358979
                    

RAND ( [ integer_seed ] )

Returns a pseudorandom float value from 0 through 1, exclusive.

  • seed: The optional integer expression that specifies the seed value. If seed is not specified, a seed value at random will be assigned.

                      SELECT RAND();
                      -- This result may be different, since the seed is randomized
                      -- Result: 0.873159630165044

                      SELECT RAND(1);
                      -- This result will always be the same, since the seed is constant
                      -- Result: 0.248668584157093
                    

ROUND ( numeric_expression [ ,integer_length] [ ,function ] )

Returns the numeric value rounded to the specified length or precision.

  • numeric_expression: The expression of a numeric data type.
  • length: The optional precision to round the numeric expression to. When this is omitted, the default behavior will be to round to the nearest whole number.
  • function: The optional type of operation to perform. When the function parameter is omitted or has a value of 0 (default), numeric_expression is rounded. When a value other than 0 is specified, numeric_expression is truncated.

                      SELECT ROUND(1.3, 0);
                      -- Result: 1

                      SELECT ROUND(1.55, 1);
                      -- Result: 1.6

                      SELECT ROUND(1.7, 0, 0);
                      -- Result: 2

                      SELECT ROUND(1.7, 0, 1);
                      -- Result: 1
                      
                      SELECT ROUND (1.24);
                      -- Result: 1.0
                    

SIGN ( numeric_expression )

Returns the positive sign (1), 0, or negative sign (-1) of the specified expression.

  • numeric_expression: The expression of an indeterminate data type except for the bit data type.

                      SELECT SIGN(0);
                      -- Result: 0

                      SELECT SIGN(10);
                      -- Result: 1

                      SELECT SIGN(-10);
                      -- Result: -1
                    

SIN ( float_expression )

Returns the trigonometric sine of the angle in radians.

  • float_expression: The float expression specifying the angle in radians.

                     SELECT SIN(1);
                     -- Result: 0.841470984807897
                    

SQRT ( float_expression )

Returns the square root of the specified float value.

  • float_expression: The expression of type float.

                      SELECT SQRT(100);
                      -- Result: 10
                    

SQUARE ( float_expression )

Returns the square of the specified float value.

  • float_expression: The expression of type float.

                      SELECT SQUARE(10);
                      -- Result: 100

                      SELECT SQUARE(-10);
                      -- Result: 100
                    

TAN ( float_expression )

Returns the tangent of the input expression.

  • float_expression: The expression of type float.

                      SELECT TAN(1);
                      -- Result: 1.5574077246549
                    

TRUNC(decimal_number,precision)

Returns the supplied decimal number truncated to have the supplied decimal precision.

  • decimal_number: The decimal value to truncate.
  • precision: The number of decimal places to truncate the decimal number to.

				SELECT TRUNC(10.3423,2);
				-- Result: 10.34
				

_ROW_NUMBER_()

Returns a row index as an additional column.

				SELECT ColumnName, _ROW_NUMBER_() FROM TableName
				-- Result: ColumnData, 0
				ColumnData2, 1
				ColumnData3, 2
				

CData Python Connector for BigCommerce

DATE Functions

CURRENT_DATE()

Returns the current date value.

                  SELECT CURRENT_DATE();
                  -- Result: 2018-02-01
                

CURRENT_TIMESTAMP()

Returns the current time stamp of the database system as a datetime value. This value is equal to GETDATE and SYSDATETIME, and is always in the local timezone.

                  SELECT CURRENT_TIMESTAMP();
                  -- Result: 2018-02-01 03:04:05
                

DATEADD (datepart , integer_number , date [, dateformat])

Returns the datetime value that results from adding the specified number (a signed integer) to the specified date part of the date.

  • datepart: The part of the date to add the specified number to. The valid values and abbreviations are
    • year (yy, yyyy)
    • quarter (qq, q)
    • month (mm, m)
    • week (wk, ww)
    • weekday (dw)
    • dayofyear (dy, y)
    • day (dd, d)
    • hour (hh)
    • minute (mi, n)
    • second (ss, s)
    • millisecond (ms)
  • number: The number to be added.
  • date: The expression of the datetime data type.
  • dateformat: The optional output date format.

                  SELECT DATEADD('d', 5, '2018-02-01');
                  -- Result: 2018-02-06

                  SELECT DATEADD('hh', 5, '2018-02-01 00:00:00');
                  -- Result: 2018-02-01 05:00:00
                

DATEDIFF ( datepart , startdate , enddate )

Returns the difference (a signed integer) of the specified time interval between the specified start date and end date.

  • datepart: The part of the date that is the time interval of the difference between the start date and end date. The valid values and abbreviations are:
    • Year (year, yyyy, yy)
    • Quarter (quarter, qq, q)
    • Month (month, mm, m)
    • Week (week, wk, ww)
    • Weekday (weekday, dw)
    • Dayofyear (dayofyear, dy, y)
    • Day (day, dd, d)
    • Hour (hour, hh)
    • Minute (minute, mi, n)
    • Second (second, ss, s)
    • Millisecond (millisecond, ms)
  • startdate: The datetime expression of the start date.
  • enddate: The datetime expression of the end date.

                  SELECT DATEDIFF('d', '2018-02-01', '2018-02-10');
                  -- Result: 9

                  SELECT DATEDIFF('hh', '2018-02-01 00:00:00', '2018-02-01 12:00:00');
                  -- Result: 12
                

DATE_FORMAT(date,format)

Returns the date or timestamp in the format specified. This function mirrors the MySQL DATE_FORMAT function.

  • date: A date or timestamp string.
  • format: The specifier string of the desired output format. The list of supported format specifiers comes from the MySQL DATE_FORMAT function (see link to MySQL documentation above).

					SELECT DATE_FORMAT('9/4/2021 3:11:53 AM','%h')
					-- Result: 03
				  

DATEFROMPARTS(integer_year, integer_month, integer_day)

Returns the datetime value for the specified year, month, and day.

  • year: The integer expression specifying the year.
  • month: The integer expression specifying the month.
  • day: The integer expression specifying the day.

                    SELECT DATEFROMPARTS(2018, 2, 1);
                    -- Result: 2018-02-01
                  

DATENAME(datepart , date)

Returns the character string that represents the specified date part of the specified date.

  • datepart: The part of the date to return. The valid values and abbreviations are year (yy, yyyy), quarter (qq, q), month (mm, m), dayofyear (dy, y), day (dd, d), week (wk, ww), weekday (dw), hour (hh), minute (mi, n), second (ss, s), millisecond (ms), microsecond (mcs), and nanosecond (ns).
  • date: The datetime expression.

                     SELECT DATENAME('yy', '2018-02-01');
                     -- Result: '2018'

                     SELECT DATENAME('dw', '2018-02-01');
                     -- Result: 'Thursday'
                   

DATEPART(datepart, date [,integer_datefirst])

Returns a character string that represents the specified date part of the specified date.

  • datepart: The part of the date to return. The valid values and abbreviations are year (yy, yyyy), quarter (qq, q), month (mm, m), dayofyear (dy, y), day (dd, d), week (wk, ww), weekday (dw), hour (hh), minute (mi, n), second (ss, s), millisecond (ms), microsecond (mcs), nanosecond (ns), ISODOW, ISO_WEEK (isoweek, isowk,isoww), and ISOYEAR.
  • date: The datetime string.
  • datefirst: The optional integer representing the first day of the week. The default is 7, Sunday.

                    SELECT DATEPART('yy', '2018-02-01');
                    -- Result: 2018

                    SELECT DATEPART('dw', '2018-02-01');
                    -- Result: 5
                  

DATETIMEFROMPARTS(integer_year, integer_month, integer_day, integer_hour, integer_minute, integer_seconds, integer_milliseconds)

Returns the datetime value for the specified date parts.

  • year: The integer expression specifying the year.
  • month: The integer expression specifying the month.
  • day: The integer expression specifying the day.
  • hour: The integer expression specifying the hour.
  • minute: The integer expression specifying the minute.
  • seconds: The integer expression specifying the seconds.
  • milliseconds: The integer expression specifying the milliseconds.

                    SELECT DATETIMEFROMPARTS(2018, 2, 1, 1, 2, 3, 456);
                    -- Result: 2018-02-01 01:02:03.456
                  

DATETIME2FROMPARTS(integer_year, integer_month, integer_day, integer_hour, integer_minute, integer_seconds, integer_fractions, integer_precision)

Returns the datetime value for the specified date parts.

  • year: The integer expression specifying the year.
  • month: The integer expression specifying the month.
  • day: The integer expression specifying the day.
  • hour: The integer expression specifying the hour.
  • minute: The integer expression specifying the minute.
  • seconds: The integer expression specifying the seconds.
  • fractions: The integer expression specifying the fractions of the second.
  • precision: The integer expression specifying the precision of the fraction.

				    SELECT DATETIME2FROMPARTS(2018, 2, 1, 1, 2, 3, 456, 3);
                    -- Result: 2018-02-01 01:02:03.456
                  

DATE_TRUNC(date, datepart)

Truncates the date to the precision of the given date part. Modeled after the Oracle TRUNC function.

  • date: The datetime string that specifies the date.
  • datepart: Refer to the Oracle documentation for valid datepart syntax.

				    SELECT DATE_TRUNC('05-04-2005', 'YY');
                    -- Result: '1/1/2005'
					
                    SELECT DATE_TRUNC('05-04-2005', 'MM');
                    -- Result: '5/1/2005'                    
                  

DATE_TRUNC2(datepart, date, [weekday])

Truncates the date to the precision of the given date part. Modeled after the PostgreSQL date_trunc function.

  • datepart: One of 'millennium', 'century', 'decade', 'year', 'quarter', 'month', 'week', 'day', 'hour', 'minute' or 'second'.
  • date: The datetime string that specifies the date.
  • weekday: The optional day of the week to use as the first day for 'week'. One of 'sunday', 'monday', etc.

                    SELECT DATE_TRUNC2('year', '2020-02-04');
                    -- Result: '2020-01-01'

                    SELECT DATE_TRUNC2('week', '2020-02-04', 'monday');
                    -- Result: '2020-02-02', which is the previous Monday
                  

DAY(date)

Returns the integer that specifies the day component of the specified date.

  • date: The datetime string that specifies the date.

                    SELECT DAY('2018-02-01');
                    -- Result: 1
                  

DAYNAME(date)

Returns the name of the day of the week of the specified date.

  • date: The datetime string that specifies the date.

                    SELECT DAYNAME('8/18/2021');
                    -- Result: Wednesday
                  

DAYOFMONTH(date)

Returns the day of the month of the given date part.
  • date: The datetime string that specifies the date.

				  SELECT DAYOFMONTH('04/15/2000');
				  -- Result: 15
				  

DAYOFWEEK(date)

Returns the day of the week of the given date part.
  • date: The datetime string that specifies the date.

				  SELECT DAYOFWEEK('04/15/2000');
				  -- Result: 7
				  

DAYOFYEAR(date)

Returns the day of the year of the given date part.
  • date: The datetime string that specifies the date.

				  SELECT DAYOFYEAR('04/15/2000');
				  -- Result: 106
				  

EOMONTH(date [, integer_month_to_add ]) or LAST_DAY(date)

Returns the last day of the month that contains the specified date with an optional offset.

  • date: The datetime expression specifying the date for which to return the last day of the month.
  • integer_month_to_add: The optional integer expression specifying the number of months to add to the date before calculating the end of the month.

                  SELECT EOMONTH('2018-02-01');
                  -- Result: 2018-02-28
                  
                  SELECT LAST_DAY('2018-02-01');
                  -- Result: 2018-02-28

                  SELECT EOMONTH('2018-02-01', 2);
                  -- Result: 2018-04-30
                

EXTRACT(date_part FROM date_column_name)

Returns the last day of the month that contains the specified date with an optional offset.

  • date_part: One of the following date components: YEAR, MONTH, DAY, HOUR, MINUTE, SECOND.
  • date_column_name: The name of a date column in a table.

                  SELECT EXTRACT(YEAR FROM DateColumn)
                  -- Result: 2021
                

FDWEEK(date)

Returns the first day of the week of the given date part.
  • date: The datetime string that specifies the date.
  • weeks to add: An optional integer expression specifying the number of months to add to the date before calculating the first day of the week.

				  SELECT FDWEEK('02-08-2018');
				  -- Result: 2/4/2018

          SELECT FDWEEK('02-08-2018', 1)
          --Result: 02/11/2018
				  

FDMONTH(date)

Returns the first day of the month of the given date part.
  • date: The datetime string that specifies the date.
  • month to add: An optional integer expression specifying the number of months to add to the date before calculating the first day of the month.

				  SELECT FDMONTH('02-08-2018');
				  -- Result: 2/1/2018

          SELECT FDMONTH('02-08-2018', 1) 
          --Result: 03/01/2018
				  

FDQUARTER(date)

Returns the first day of the quarter of the given date part.
  • date: The datetime string that specifies the date.
  • quarters to add: An optional integer expression specifying the number of months to add to the date before calculating the first day of the quarter.

				  SELECT FDQUARTER('05-08-2018');
				  -- Result: 4/1/2018

          SELECT FDQUARTER('05-08-2018',1)
          --Result: 07/01/2018
				  

FILEMODIFIEDTIME(uri)

Returns the time stamp associated with the Date Modified of the relevant file.

  • uri: An absolute path pointing to a file on the local file system.

				 SELECT FILEMODIFIEDTIME('C:/Documents/myfile.txt');
				 -- Result: 6/25/2019 10:06:58 AM
				 

FROM_DAYS(datevalue)

Returns a date derived from the number of days after 1582-10-15 (based upon the Gregorian calendar). This will be equivalent to the MYSQL FROM_DAYS function.

  • datevalue: A integer value representing the number of days since 1582-10-15.

				SELECT FROM_DAYS(736000);
				-- Result: 2/6/2015
				

FROM_UNIXTIME(time, issecond)

Returns a representation of the unix_timestamp argument as a value in YYYY-MM-DD HH:MM:SS expressed in the current time zone.

  • time: The time stamp value from epoch time. Milliseconds are accepted.
  • issecond: Indicates the time stamp value is milliseconds to epoch time.

                      SELECT FROM_UNIXTIME(1540495231, 1);
                      -- Result: 2018-10-25 19:20:31

                      SELECT FROM_UNIXTIME(1540495357385, 0);
                      -- Result: 2018-10-25 19:22:37
                    

GETDATE()

Returns the current time stamp of the database system as a datetime value. This value is equal to CURRENT_TIMESTAMP and SYSDATETIME, and is always in the local timezone.

                  SELECT GETDATE();
                  -- Result: 2018-02-01 03:04:05
                

GETUTCDATE()

Returns the current time stamp of the database system formatted as a UTC datetime value. This value is equal to SYSUTCDATETIME.

In addition, GETUTCDATE can take an optional second parameter, a date and time that are converted to UTC.

                  SELECT GETUTCDATE();
                  -- For example, if the local timezone is Eastern European Time (GMT+2)
                  -- Result: 2018-02-01 05:04:05

                  SELECT GETUTCDATE('2020/08/31 13:56:00')
                  --Result: '2020-08-31 17:56:00'
                

HOUR(date)

Returns the hour component from the provided datetime.

  • date: The datetime string that specifies the date.

				SELECT HOUR('02-02-2020 11:30:00');
				-- Result: 11
				

ISDATE(date, [date_format])

Returns 1 if the value is a valid date, time, or datetime value; otherwise, 0.

  • date: The datetime string.
  • date_format: The optional datetime format.

                      SELECT ISDATE('2018-02-01', 'yyyy-MM-dd');
                      -- Result: 1

                      SELECT ISDATE('Not a date');
                      -- Result: 0
                    

LAST_WEEK()

Returns a time stamp equivalent to exactly one week before the current date.

				SELECT LAST_WEEK();	//Assume the date is 3/17/2020	
			 -- Result: 3/10/2020 00:00:00
				

LAST_MONTH()

Returns a time stamp equivalent to exactly one month before the current date.

	
				SELECT LAST_MONTH(); //Assume the date is 3/17/2020
				-- Result: 2/17/2020 00:00:00
				

LAST_YEAR()

Returns a time stamp equivalent to exactly one year before the current date.

				SELECT LAST_YEAR();	//Assume the date is 3/17/2020	
				-- Result: 3/10/2019 00:00:00
				

LDWEEK(date)

Returns the last day of the provided week.

  • date: The datetime string.
  • weeks to add: An optional integer expression specifying the number of months to add to the date before calculating the last day of the week.

				SELECT LDWEEK('02-02-2020');
				-- Result: 2/8/2020
				

LDMONTH(date)

Returns the last day of the provided month.

  • date: The datetime string.
  • months to add: An optional integer expression specifying the number of months to add to the date before calculating the last day of the month.

				SELECT LDMONTH('02-02-2020');
				-- Result: 2/29/2020

        SELECT LDMONTH('02-08-2020', 1)
        --Result: 03/31/2020
				

LDQUARTER(date)

Returns the last day of the provided quarter.

  • date: The datetime string.
  • quarters to add: An optional integer expression specifying the number of months to add to the date before calculating the last day of the quarter.

				SELECT LDQUARTER('02-02-2020');
				-- Result: 3/31/2020

        SELECT LDQUARTER('02-02-2020',1)
        --Result: 06/30/2020
				

MAKEDATE(year, days)

Returns a date value from a year and a number of days.

  • year: The year
  • days: The number of days into the year. Value must be greater than 0.

          SELECT MAKEDATE(2020, 1);
          -- Result: 2020-01-01
        

MINUTE(date)

Returns the minute component from the provided datetime.

  • date: The datetime string that specifies the date.

				SELECT MINUTE('02-02-2020 11:15:00');
				-- Result: 15
				

MONTH(date)

Returns the month component from the provided datetime.

  • date: The datetime string that specifies the date.

				SELECT MONTH('02-02-2020');
				-- Result: 2
				

QUARTER(date)

Returns the quarter associated with the provided datetime.

  • date: The datetime string that specifies the date.

				SELECT QUARTER('02-02-2020');
				-- Result: 1
				

SECOND(date)

Returns the second component from the provided datetime.

  • date: The datetime string that specifies the date.

				SELECT SECOND('02-02-2020 11:15:23');
				-- Result: 23
				

SMALLDATETIMEFROMPARTS(integer_year, integer_month, integer_day, integer_hour, integer_minute)

Returns the datetime value for the specified date and time.

  • year: The integer expression specifying the year.
  • month: The integer expression specifying the month.
  • day: The integer expression specifying the day.
  • hour: The integer expression specifying the hour.
  • minute: The integer expression specifying the minute.

                      SELECT SMALLDATETIMEFROMPARTS(2018, 2, 1, 1, 2);
                      -- Result: 2018-02-01 01:02:00
                    

STRTODATE(string,format)

Parses the provided string value and returns the corresponding datetime.

  • string: The string value to be converted to datetime format.
  • format: A format string which describes how to interpret the first string input. A few special formats are available as well, including UNIX, UNIXMILIS, TICKS, and FILETICKS.

				SELECT STRTODATE('03*04*2020','dd*MM*yyyy');
				-- Result: 4/3/2020
				

SYSDATETIME()

Returns the current time stamp as a datetime value of the database system. It is equal to GETDATE and CURRENT_TIMESTAMP, and is always in the local timezone.

                  SELECT SYSDATETIME();
                  -- Result: 2018-02-01 03:04:05
                

SYSUTCDATETIME()

Returns the current system date and time as a UTC datetime value. It is equal to GETUTCDATE.

                  SELECT SYSUTCDATETIME();
                  -- For example, if the local timezone is Eastern European Time (GMT+2)
                  -- Result: 2018-02-01 05:04:05
                

TIMEFROMPARTS(integer_hour, integer_minute, integer_seconds, integer_fractions, integer_precision)

Returns the time value for the specified time and with the specified precision.

  • hour: The integer expression specifying the hour.
  • minute: The integer expression specifying the minute.
  • seconds: The integer expression specifying the seconds.
  • fractions: The integer expression specifying the fractions of the second.
  • precision : The integer expression specifying the precision of the fraction.

                      SELECT TIMEFROMPARTS(1, 2, 3, 456, 3);
                      -- Result: 01:02:03.456
                    

TO_DAYS(date)

Returns the number of days since 0000-00-01. This will only return a value for dates on or after 1582-10-15 (based upon the Gregorian calendar). This will be equivalent to the MYSQL TO_DAYS function.

  • date: The datetime string that specifies the date.

				SELECT TO_DAYS('02-06-2015');
				-- Result: 736000
				

WEEK(date)

Returns the week (of the year) associated with the provided datetime.

  • date: The datetime string that specifies the date.

				SELECT WEEK('02-17-2020 11:15:23');
				-- Result: 8
				

YEAR(date)

Returns the integer that specifies the year of the specified date.

  • date: The datetime string.

                      SELECT YEAR('2018-02-01');
                      -- Result: 2018
                    

CData Python Connector for BigCommerce

Date Literal Functions

The following date literal functions can be used to filter date fields using relative intervals. Note that while the <, >, and = operators are supported for these functions, <= and >= are not.

L_TODAY()

The current day.

  SELECT * FROM MyTable WHERE MyDateField = L_TODAY()

L_YESTERDAY()

The previous day.

  SELECT * FROM MyTable WHERE MyDateField = L_YESTERDAY()

L_TOMORROW()

The following day.

  SELECT * FROM MyTable WHERE MyDateField = L_TOMORROW()

L_LAST_WEEK()

Every day in the preceding week.

  SELECT * FROM MyTable WHERE MyDateField = L_LAST_WEEK()

L_THIS_WEEK()

Every day in the current week.

  SELECT * FROM MyTable WHERE MyDateField = L_THIS_WEEK()

L_NEXT_WEEK()

Every day in the following week.

  SELECT * FROM MyTable WHERE MyDateField = L_NEXT_WEEK()
Also available:
  • L_LAST/L_THIS/L_NEXT MONTH
  • L_LAST/L_THIS/L_NEXT QUARTER
  • L_LAST/L_THIS/L_NEXT YEAR

L_LAST_N_DAYS(n)

The previous n days, excluding the current day.

  SELECT * FROM MyTable WHERE MyDateField = L_LAST_N_DAYS(3)

L_NEXT_N_DAYS(n)

The following n days, including the current day.

  SELECT * FROM MyTable WHERE MyDateField = L_NEXT_N_DAYS(3)
Also available:
  • L_LAST/L_NEXT_90_DAYS

L_LAST_N_WEEKS(n)

Every day in every week, starting n weeks before current week, and ending in the previous week.

  SELECT * FROM MyTable WHERE MyDateField = L_LAST_N_WEEKS(3)

L_NEXT_N_WEEKS(n)

Every day in every week, starting the following week, and ending n weeks in the future.

  SELECT * FROM MyTable WHERE MyDateField = L_NEXT_N_WEEKS(3)
Also available:
  • L_LAST/L_NEXT_N_MONTHS(n)
  • L_LAST/L_NEXT_N_QUARTERS(n)
  • L_LAST/L_NEXT_N_YEARS(n)

CData Python Connector for BigCommerce

SELECT Statements

A SELECT statement can consist of the following basic clauses.

  • SELECT
  • INTO
  • FROM
  • JOIN
  • WHERE
  • GROUP BY
  • HAVING
  • UNION
  • ORDER BY
  • LIMIT

SELECT Syntax

The following syntax diagram outlines the syntax supported by the SQL engine of the connector:

SELECT {
  [ TOP <numeric_literal> | DISTINCT ]
  { 
    * 
    | { 
        <expression> [ [ AS ] <column_reference> ] 
        | { <table_name> | <correlation_name> } .* 
      } [ , ... ] 
  }
  { 
    FROM <table_reference> [ [ AS ] <identifier> ] 
  } [ , ... ]
  [ [  
      INNER | { { LEFT | RIGHT | FULL } [ OUTER ] } 
    ] JOIN <table_reference> [ ON <search_condition> ] [ [ AS ] <identifier> ] 
  ] [ ... ] 
  [ WHERE <search_condition> ]
  [ GROUP BY <column_reference> [ , ... ]
  [ HAVING <search_condition> ]
  [ UNION [ ALL ] <select_statement> ]
  [ 
    ORDER BY 
    <column_reference> [ ASC | DESC ] [ NULLS FIRST | NULLS LAST ]
  ]
  [ 
    LIMIT <expression>
    [ 
      { OFFSET | , }
      <expression> 
    ]
  ] 
} | SCOPE_IDENTITY() 

<expression> ::=
  | <column_reference>
  | @ <parameter> 
  | ?
  | COUNT( * | { [ DISTINCT ] <expression> } )
  | { AVG | MAX | MIN | SUM | COUNT } ( <expression> ) 
  | NULLIF ( <expression> , <expression> ) 
  | COALESCE ( <expression> , ... ) 
  | CASE <expression>
      WHEN { <expression> | <search_condition> } THEN { <expression> | NULL } [ ... ]
    [ ELSE { <expression> | NULL } ]
    END 
  | {RANK() | DENSE_RANK()} OVER ([PARTITION BY <column_reference>] {ORDER BY <column_reference>})
  | <literal>
  | <sql_function> 

<search_condition> ::= 
  {
    <expression> { = | > | < | >= | <= | <> | != | LIKE | NOT LIKE | IN | NOT IN | IS NULL | IS NOT NULL | AND | OR | CONTAINS | BETWEEN | IS DISTINCT FROM | IS NOT DISTINCT FROM } [ <expression> ]
  } [ { AND | OR } ... ] 

Examples

  1. Return all columns:
    SELECT * FROM Customers
  2. Rename a column:
    SELECT [LastName] AS MY_LastName FROM Customers
  3. Cast a column's data as a different data type:
    SELECT CAST(AnnualRevenue AS VARCHAR) AS Str_AnnualRevenue FROM Customers
  4. Search data:
    SELECT * FROM Customers WHERE Column2 = 'Bob'
  5. Return the number of items matching the query criteria:
    SELECT COUNT(*) AS MyCount FROM Customers 
  6. Return the number of unique items matching the query criteria:
    SELECT COUNT(DISTINCT LastName) FROM Customers 
  7. Return the unique items matching the query criteria:
    SELECT DISTINCT LastName FROM Customers 
  8. Sort a result set in ascending order:
    SELECT FirstName, LastName FROM Customers  ORDER BY LastName ASC
  9. Restrict a result set to the specified number of rows:
    SELECT FirstName, LastName FROM Customers LIMIT 10 
  10. Parameterize a query to pass in inputs at execution time. This enables you to create prepared statements and mitigate SQL injection attacks.
    SELECT * FROM Customers WHERE Column2 = @param
See Explicitly Caching Data for information on using the SELECT statement in offline mode.

Pseudo Columns

Some input-only fields are available in SELECT statements. These fields, called pseudo columns, do not appear as regular columns in the results, yet may be specified as part of the WHERE clause. You can use pseudo columns to access additional features from BigCommerce.

    SELECT * FROM Customers WHERE Query = 'Column3 > 100'
    

Aggregate Functions

For SELECT examples using aggregate functions, see Aggregate Functions.

JOIN Queries

See JOIN Queries for SELECT query examples using JOINs.

Date Literal Functions

Date Literal Functions contains SELECT examples with date literal functions.

Window Functions

See Window Functions for SELECT examples containing window functions.

Table-Valued Functions

See Table-Valued Functions for SELECT examples with table-valued functions.

CData Python Connector for BigCommerce

Aggregate Functions

COUNT

Returns the number of rows matching the query criteria.

SELECT COUNT(*) FROM Customers WHERE Column2 = 'Bob'

COUNT(DISTINCT)

Returns the number of distinct, non-null field values matching the query criteria.

SELECT COUNT(DISTINCT FirstName) AS DistinctValues FROM Customers WHERE Column2 = 'Bob'

AVG

Returns the average of the column values.

SELECT LastName, AVG(AnnualRevenue) FROM Customers WHERE Column2 = 'Bob'  GROUP BY LastName

MIN

Returns the minimum column value.

SELECT MIN(AnnualRevenue), LastName FROM Customers WHERE Column2 = 'Bob' GROUP BY LastName

MAX

Returns the maximum column value.

SELECT LastName, MAX(AnnualRevenue) FROM Customers WHERE Column2 = 'Bob' GROUP BY LastName

SUM

Returns the total sum of the column values.

SELECT SUM(AnnualRevenue) FROM Customers WHERE Column2 = 'Bob'

CData Python Connector for BigCommerce

JOIN Queries

The CData Python Connector for BigCommerce supports standard SQL joins like the following examples.

Inner Join

An inner join selects only rows from both tables that match the join condition:

SELECT c.SampleCol1, o.SampleCol2, o.SampleCol3, o.SampleCol4 FROM SampleTable_1 c INNER JOIN SampleTable_2 o ON c.Id = o.Id2

Left Join

A left join selects all rows in the FROM table and only matching rows in the JOIN table:

 SELECT c.SampleCol1, o.SampleCol2, o.SampleCol3, o.SampleCol4 FROM SampleTable_1 c LEFT JOIN SampleTable_2 o ON c.Id = o.Id2

CData Python Connector for BigCommerce

Window Functions

Window functions allow you to create computed fields from a group of rows (a window) that return a result for each row, as opposed to one computed result for a set of rows, as is the case with aggregate functions. The connector supports the following window function syntax.

Note: Window function support is an experimental feature of the connector. This functionality extends beyond the connector's core scope of being SQL-92 compliant. As such, performance with window functions may not be optimal.

Window Function Clauses

OVER

The OVER clause defines the window over which window functions are performed.

SELECT A, B, <window function> OVER (<window frame>) FROM TableName

The <window function> refers to any supported window function clause, and the <window frame> refers to one or more clauses that specify the logic by which the window is defined.

PARTITION BY

The PARTITION BY clause subdivides a window into sub-windows called partitions. For each unique value in the column specified in the PARTITION BY clause, every record with that value collectively forms an individual partition.

SELECT A, B, <window function> OVER (PARTITION BY A ORDER BY B) From Customers

The <window function> refers to any supported window function clause.

Window Functions

The connector supports math, ranking, and analytic window functions.

Math

These window functions perform mathematical operations on the records within the window.

COUNT()

Calculates the number of records in each partition. The calculated column is of the data type "int".

In each partition, every record will display the total number of records in that partition.

SELECT Name, Role, Earnings, COUNT() OVER (PARTITION BY Role) FROM Employees

COUNT_BIG()

Calculates the number of records in each partition. The calculated column is of the data type "bigint".

In each partition, every record will display the total number of records in that partition.

SELECT Name, Role, Earnings, COUNT_BIG() OVER (PARTITION BY Role) FROM Employees

MIN(numeric_column)

Calculates the minimum value of a numerical column per partition.

In each partition, every record will display the minimum value of numeric_column across the records in that partition.

SELECT Name, Role, Earnings, MIN(Earnings) OVER (PARTITION BY Role) FROM Employees

MAX(numeric_column)

Calculates the maximum value of a numerical column per partition.

In each partition, every record will display the maximum value of numeric_column across the records in that partition.

SELECT Name, Role, Earnings, MAX(Earnings) OVER (PARTITION BY Role) FROM Employees

SUM(numeric_column)

Calculates the sum of a numerical column per partition.

In each partition, every record will display the sum of numeric_column across the records in that partition.

SELECT Name, Role, Earnings, SUM(Earnings) OVER (PARTITION BY Role) FROM Employees

AVG(numeric_column)

Calculates the average value of a numerical column per partition.

In each partition, every record will display the average value of numeric_column across the records in that partition.

SELECT Name, Role, Earnings, AVG(Earnings) OVER (PARTITION BY Role) FROM Employees

MEDIAN(numeric_column)

Calculates the median value of a numerical column per partition.

In each partition, every record will display the median value of numeric_column across the records in that partition.

SELECT Name, Role, Earnings, MEDIAN(Earnings) OVER (PARTITION BY Role) FROM Employees

STDEV(numeric_column)

Calculates the standard deviation of a numerical column per partition.

In each partition, every record will display the standard deviation of numeric_column across the records in that partition.

SELECT Name, Role, Earnings, STDEV(Earnings) OVER (PARTITION BY Role) FROM Employees

STDEVP(numeric_column)

Calculates the population standard deviation of a numerical column per partition.

In each partition, every record will display the population standard deviation of numeric_column across the records in that partition.

SELECT Name, Role, Earnings, STDEVP(Earnings) OVER (PARTITION BY Role) FROM Employees

VAR(numeric_column)

Calculates the statistical standard variance of a numerical column per partition.

In each partition, every record will display the statistical standard variance of numeric_column across the records in that partition.

SELECT Name, Role, Earnings, VAR(Earnings) OVER (PARTITION BY Role) FROM Employees

VARP(numeric_column)

Calculates the variance population of a numerical column per partition.

In each partition, every record will display the variance population of numeric_column across the records in that partition.

SELECT Name, Role, Earnings, VARP(Earnings) OVER (PARTITION BY Role) FROM Employees

Ranking

These window functions rank records that fall within the window and its partitions.

RANK()

Assigns a rank number to each record in a window based on the value of the column specified in the required ORDER BY clause.

If two or more records have an equal value in the in ranked column, they all receive the same rank number and the rank count increments internally, skipping ahead one rank number for each record with a duplicate value in the ORDER BY column.

SELECT FirstName, LastName, RANK() OVER (ORDER BY LastName) AS Rank FROM Customers

If you add a PARTITION BY clause, a separate set of ranks is calculated for each partition.

SELECT FirstName, LastName, RANK() OVER (PARTITION BY FirstName ORDER BY LastName) AS Rank FROM Customers

DENSE_RANK()

Operates like the RANK() function, but it doesn't increment the internal rank counter for each record with a duplicate value in the ranked column.

This means that, while records with identical values in the ORDER BY column still share a rank number, the function never skips a rank number.

SELECT FirstName, LastName, DENSE_RANK() OVER (PARTITION BY FirstName ORDER BY LastName) AS Rank FROM Customers

If you add a PARTITION BY clause, a separate set of ranks is calculated for each partition.

SELECT FirstName, LastName, DENSE_RANK() OVER (PARTITION BY FirstName ORDER BY LastName) AS Rank FROM Customers

ROW_NUMBER()

Calculates a row number for each record. An ORDER BY clause in the OVER clause is required.

SELECT Name, Role, Earnings, ROW_NUMBER() OVER (ORDER BY Role) FROM Employees
If you define multiple partitions with PARTITION BY, a new set of row numbers are calculated for each partition.
SELECT Name, Role, Earnings, ROW_NUMBER() OVER (PARTITION BY Role ORDER BY Earnings) FROM Employees

NTILE()

Distributes rows of an ordered partition into a specified number of approximately equal groups, or buckets. It assigns each group a bucket number starting from one. For each row in a group, the NTILE() function assigns a bucket number representing the group to which the row belongs.

The syntax of NTILE() is:

NTILE(buckets) OVER (
    [PARTITION BY partition_expression, ... ]
    ORDER BY sort_expression [ASC | DESC], ...
)
The following are paramaters that NTILE() supports:

  • buckets: The number of buckets into which the rows are divided. The buckets can be an expression or subquery that evaluates to a positive integer. It cannot be a window function.
  • PARTITION BY: distributes rows of a result set into partitions to which the NTILE() function is applied.
  • ORDER BY is clause that specifies the logical order of rows in each partition to which the NTILE() is applied.

If the number of rows is not divisible by the buckets, the NTILE() function returns groups of two sizes with the difference by one. The larger groups always precede the smaller group in the order set by ORDER BY in the OVER() clause.

If the total of rows is divisible by the number of buckets, the function divides the rows evenly among buckets. The following statement creates a new table named ntile_demo that stores 10 integers:

CREATE TABLE sales.ntile_demo (
	v INT NOT NULL
);
	
INSERT INTO sales.ntile_demo(v) 
VALUES(1),(2),(3),(4),(5),(6),(7),(8),(9),(10);	
	
SELECT * FROM sales.ntile_demo;
This statement uses the NTILE() function to divide ten rows into three groups:
SELECT 
	v, 
	NTILE (3) OVER (
		ORDER BY v
	) buckets
FROM 
	sales.ntile_demo;

Analytical

These window functions perform analytical operations on the records within the window.

PERCENT_RANK()

Calculates the relative rank SQL Percentile of each row. It returns values greater than zero, but the maximum value is one. It does not count any NULL values. This function is nondeterministic.

The syntax of PERCENT_RANK() is:

PERCENT_RANK() OVER (
      [PARTITION BY partition_expression, ... ]
      ORDER BY sort_expression [ASC | DESC], ...
  )
  
This syntax uses the following parameters.

  • PARTITION BY: By default, SQL Server treats the whole data set as a single set. You can specify the PARTITION BY clause to divide data into multiple sets. The Percent_Rank function performs the analytical calculations on each set. This parameter is optional.
  • ORDER BY: Sorts the data in either ascending or descending order. This parameter is required.

CData Python Connector for BigCommerce

Table-Valued Functions

Table-valued functions are functions that return a table (rowset).

Note: Table-valued function support is an experimental feature of the connector. This functionality extends beyond the connector's core scope of being SQL-92 compliant. As such, performance with these functions may not be optimal.

Table-Valued Function Clauses

CROSS APPLY

The CROSS APPLY operator is used to perform a subquery on each row of a table or resultset produced by a preceding table expression.

<table_expression_1> CROSS APPLY <table_expression_2>

The second table expression can reference results from the first table expression to create derived columns or an altered recordset via a table-valued function.

Each resulting record is an instance of the record it's splitting, with all the same column values, except for the column(s) containing the value split by the function.

WITH

The WITH clause is used alongside certain table-valued functions to match against constructs within the structure being split (keys, element names, attribute names, etc.) and/or to specify metadata for the columns generated from the function.
SELECT A.ColumnName, X.DerivedColumnName FROM TableName A CROSS APPLY <table-valued function> WITH (DerivedColumnName varchar(255)) AS X

Table-Valued Functions

STRING_SPLIT(input_text,delimiter)

Takes each record in the recordset of the preceding table expression, splits the column containing delimiters (input_text) into substrings separated by the delimiter, and returns one record per substring.

  • input_text: A column whose value you want to parse.
  • delimiter: The character used to split the value of the column specified in input_text.

Suppose there is a column called "SplitColumn" with the following content:

One-Two-Three
To unpack this value across multiple records:
SELECT A.ID, X.Value FROM [TableWithDelimitedStringField] A CROSS APPLY STRING_SPLIT(A.SplitColumn,'-') WITH (Value VARCHAR(255)) AS X

-- Results:
-----------
|ID|Value|
|1|One|
|1|Two|
|1|Three|

JSONTABLE(json_content,[jsonpath])

For each record in the recordset of the preceding table expression, returns one record for each instance of a key in a JSON array (json_content) that matches the key(s) specified in the WITH clause, at the scope specified by the "jsonpath" input.

  • json_content: A JSON "table" (array of objects). The contents can nest, but this must be a single JSON array, not any other JSON structure, at the root level.
    • The values of every instance of the key(s) provided in the WITH clause are retrievable only for substructures which are immediate children of the root-level JSON array.
  • jsonpath: An optional JSONPath query defining the scope, within the json_content array, that you want to pull content from. The JSON key(s) identified in the WITH clause must exist at the scope defined in this parameter. This defaults to the JSON root ($).

Consider a sample table with a single record, including an ID column and column with JSON content called "JSONColumn" with the following content:

[
	{
		"name": "Samuel",
		"email": "sam@gmail.com",
		"extrainfo": {
			"city": "Seattle"
		}
	},
	{
		"name": "Katherine",
		"email": "kat@gmail.com",
	},
	{
		"name": "George",
		"email": "george23@gmail.com",
	},
	{
		"name": "Carlos",
		"email": "carlos32@gmail.com",
	}
]

To extract all values for a certain key, specify the scope in the JSONTABLE function and provide the desired key(s) in the WITH clause.

SELECT A.ID, X.name FROM [TableWithJSONField] A CROSS APPLY JSONTABLE(A.JSONColumn) WITH (name VARCHAR(255)) AS X

-- Results: 
|ID|name|
---------
|1 |Samuel|
|1 |Katherine|
|1 |George|
|1 |Carlos|

XMLTABLE(xml_content,[xpath,child_type])

For each record in the resultset of the preceding table expression, returns one record for each of the elements and/or attributes in an XML structure (xml_content) that match the tag name(s) and/or attribute name(s) specified in the WITH clause, at the scope specified in the "xpath" input.

  • xml_content: A column containing an XML structure.
  • xpath: An optional XPath that specifies the scope within the XML structure at which the connector extracts content matching the tag/attribute name(s) specified in the WITH clause.
    • When extracting the content of sub-elements, the connector can retrieve all content from tags at the root level, (depth 0) immediate children of the root (depth 1), and children of those children (depth 2).
    • When extracting element attribute content, the connector can retrieve all content from tags containing the specified attribute at the root level (depth 0) and from immediate children of root-level elements (depth 1).
  • child_type: An optional parameter that specifies the part(s) of the parent element (specified in the xpath input) that the column(s) provided in the WITH clause are checked against to identify content.
    • You can supply the following values:
      • 0: The column(s) in the WITH clause are checked for matches against the parent element's attribute names and sub-element tag names.
      • 1: The column(s) in the WITH clause are checked for matches against the parent element's attribute names.
      • 2: The column(s) in the WITH clause are checked for matches against the parent element's sub-element tag names.
    • When not supplied, this defaults to 0.

Extracting Sub-Element Values

Consider a sample table with a single record, including an ID column and a column with XML content called "XMLContent" with the following content:
<shoppingList>
    <item>
        <name>Apples</name>
        <quantity>3</quantity>
        <unit>Kg</unit>
    </item>
    <item>
        <name>Bread</name>
        <quantity>2</quantity>
        <unit>Loaf</unit>
		<extrainfo>
			<Type>Whole-Grain</Type>
		</extrainfo>
    </item>
    <item>
        <name>Milk</name>
        <quantity>1</quantity>
        <unit>Carton</unit>
    </item>
    <item>
        <name>Eggs</name>
        <quantity>12</quantity>
        <unit></unit>
    </item>
</shoppingList>

To extract sub-element content, specify the scope in the XMLTABLE function and provide the desired element name(s) in the WITH clause. Note that this will not work if the XMLTABLE function's child_type input is set to 1.

SELECT A.ID, X.name FROM [TableWithXMLField] A CROSS APPLY XMLTABLE(A.XMLContent,'//*/item') WITH (name VARCHAR(255)) AS X

-- Results: 
|ID|name|
---------
|1|Apples|
|1|Bread|
|1|Milk|
|1|Eggs|

Extracting Values Using Element Tag Attributes

Suppose you have this sample table with a single record, including an ID column and a column with XML content called "XMLContent" with the following content:

<restaurant>
  <dish type="appetizer">
    <name lang="en">Caprese Salad</name>
    <chef>Chef Giovanni</chef>
    <price currency="USD">9.99</price>
  </dish>
  <dish type="main-course">
    <name lang="fr">Boeuf Bourguignon</name>
    <chef>Chef Marie</chef>
    <price currency="EUR">19.99</price>
  </dish>
  <dish type="dessert">
    <name lang="es">Tres Leches Cake</name>
    <chef>Chef Alejandro</chef>
    <price currency="MXN">89.99</price>
  </dish>
</restaurant>

To extract attribute content, specify the scope in the XMLTABLE function and provide the desired attribute name(s) in the WITH clause. Note that this will not work if the XMLTABLE function's child_type input is set to 2.

SELECT A.ID, X.type FROM [TableWithXMLField] A CROSS APPLY XMLTABLE(A.XMLContent,'//*/dish') WITH (type VARCHAR(255)) AS X

-- Results: 
|ID|type|
---------
|1|appetizer|
|1|main-course|
|1|dessert|

CSVTABLE(csv_content,[delimiter])

For each record in the resultset of the preceding table expression, reads from a column that contains a CSV table (csv_content) and for each record in that CSV table, returns one record containing the value of the CSV column(s) specified in the WITH clause.

  • csv_content: A column containing a CSV table.
  • delimiter: An optional custom delimiter (instead of a comma) which splits the CSV content contained in the csv_content input.

Consider a sample table with a single record, including an ID column and a column containing CSV table called "CSVContent" with the following content:

Name;Category;Price
Apple;Fruit;0.99
Spaghetti;Pasta;5.49
Chicken Breast;Meat;8.99
Broccoli;Vegetable;2.49

To select every value in the "Name" column and account for the custom delimiter (;):

SELECT A.ID, X.Name FROM [TableWithCSVField] A CROSS APPLY CSVTABLE(A.CSVContent,';') WITH (Name VARCHAR(255)) AS X

-- Results:
|ID|Name|
-----------
|1|Apple|
|1|Spaghetti|
|1|Chicken Breast|
|1|Broccoli|

CData Python Connector for BigCommerce

INSERT Statements

To create new records, use INSERT statements.

INSERT Syntax

The INSERT statement specifies the columns to be inserted and the new column values. You can specify the column values in a comma-separated list in the VALUES clause, as shown in the following example:

INSERT INTO <table_name> 
( <column_reference> [ , ... ] )
VALUES 
( { <expression> | NULL } [ , ... ] ) 
  

<expression> ::=
  | @ <parameter> 
  | ?
  | <literal>
The following is an example query:
INSERT INTO Customers (LastName) VALUES ('John')

CData Python Connector for BigCommerce

UPDATE Statements

To modify existing records, use UPDATE statements.

Update Syntax

The UPDATE statement takes as input a comma-separated list of columns and new column values as name-value pairs in the SET clause, as shown in the following example:

UPDATE <table_name> SET <select_statement> | {<column_reference> = <expression> [ , ... ]} WHERE { Id = <expression>  } [ { AND | OR } ... ] 

<expression> ::=
  | @ <parameter> 
  | ?
  | <literal>

The following is an example query:

UPDATE Customers SET LastName='John' WHERE Id = @myId

CData Python Connector for BigCommerce

DELETE Statements

To delete information from a table, use DELETE statements.

DELETE Syntax

The DELETE statement requires the table name in the FROM clause and the row's primary key in the WHERE clause, as shown in the following example:

<delete_statement> ::= DELETE FROM <table_name> WHERE { Id = <expression> } [ { AND | OR } ... ]

<expression> ::=
  | @ <parameter> 
  | ?
  | <literal>

The following is an example query:

DELETE FROM Customers WHERE Id = @myId

CData Python Connector for BigCommerce

CACHE Statements

When caching is enabled, CACHE statements provide complete control over the data that is cached and the table to which it is cached. The CACHE statement executes the SELECT statement specified and caches its results to a table with the same name in the cache database or to table specified in <cached_table_name>. The connector updates or inserts rows to the cache depending on whether or not they already exist in the cache, so the primary key, which is used to identify existing rows, must be included in the selected columns.

See Caching Data for more information on different caching strategies.

CACHE Statement Syntax

The cache statement may include the following options that alter its behavior:

CACHE [ <cached_table_name> ] [ WITH TRUNCATE | AUTOCOMMIT | SCHEMA ONLY | DROP EXISTING | ALTER SCHEMA ] <select_statement> 

WITH TRUNCATE

If this option is set, the connector removes existing rows in the cache table before adding the selected rows. Use this option if you want to refresh the entire cache table but keep its existing schema.

AUTOCOMMIT

If this option is set, the connector commits each row individually. Use this option if you want to ignore the rows that could not be cached due to some reason. By default, the entire result set is cached as a single transaction.

DROP EXISTING

If this option is set, the connector drops the existing cache table before caching the new results. Use this option if you want to refresh the entire cache table, including its schema.

SCHEMA ONLY

If this option is set, the connector creates the cache table based on the SELECT statement without executing the query.

ALTER SCHEMA

If this option is set, the connector alters the schema of the existing table in the cache if it does not match the schema of the SELECT statement. This option results in new columns or dropped columns, if the schema of the SELECT statement does not match the cached table.

Common Queries

Use the following cache statement to cache all rows of a table:

CACHE SELECT * FROM Customers

Use the following cache statement to cache all rows of a table into the cache table CachedCustomers:

CACHE CachedCustomers SELECT * FROM Customers

Use the following cache statement for incremental caching. The DateModified column may not exist in all tables. The cache statement shows how incremental caching would work if there were such a column. Also, notice that, in this case, the WITH TRUNCATE and DROP EXISTING options are specifically omitted, which would have deleted all existing rows.

CACHE CachedCustomers SELECT * FROM Customers WHERE DateModified > '2013-04-04'

Use the following cache statements to create a table with all available columns that will then cache only a few of them. The sequence of statements cache only FirstName and LastName even though the cache table CachedCustomers has all the columns in Customers.

CACHE CachedCustomers SCHEMA ONLY SELECT * FROM Customers
CACHE CachedCustomers SELECT FirstName, LastName FROM Customers

CData Python Connector for BigCommerce

EXECUTE Statements

To execute stored procedures, you can use EXECUTE or EXEC statements.

EXEC and EXECUTE assign stored procedure inputs, referenced by name, to values or parameter names.

Stored Procedure Syntax

To execute a stored procedure as an SQL statement, use the following syntax:

 
{ EXECUTE | EXEC } <stored_proc_name> 
{
  [ @ ] <input_name> = <expression>
} [ , ... ]

<expression> ::=
  | @ <parameter> 
  | ?
  | <literal>

Example Statements

Reference stored procedure inputs by name:

EXECUTE my_proc @second = 2, @first = 1, @third = 3;

Execute a parameterized stored procedure statement:

EXECUTE my_proc second = @p1, first = @p2, third = @p3; 

CData Python Connector for BigCommerce

PIVOT and UNPIVOT

PIVOT and UNPIVOT can be used to change a table-valued expression into another table.

PIVOT

PIVOT rotates a table-value expression by turning unique values from one column into multiple columns in the output. PIVOT can run aggregations where required on any column value.
PIVOT Synax

 
"SELECT 'AverageCost' AS Cost_Sorted_By_Production_Days, [0], [1], [2], [3], [4]
FROM
(
SELECT DaysToManufacture, StandardCost
FROM Production.Product
) AS SourceTable
PIVOT
(
AVG(StandardCost)
FOR DaysToManufacture IN ([0], [1], [2], [3], [4])
) AS PivotTable;"

UNPIVOT

UNPIVOT carries out nearly the opposite to PIVOT by rotating columns of a table-valued expressions into column values.
UNPIVOT Sytax

 
"SELECT VendorID, Employee, Orders
FROM
(SELECT VendorID, Emp1, Emp2, Emp3, Emp4, Emp5
FROM pvt) p
UNPIVOT
(Orders FOR Employee IN
(Emp1, Emp2, Emp3, Emp4, Emp5)
)AS unpvt;"

For further information on PIVOT and UNPIVOT, see FROM clause plus JOIN, APPLY, PIVOT (Transact-SQL)

CData Python Connector for BigCommerce

Data Model

Using BigCommerce

See BigCommerce Data Model for the available entities in the BigCommerce Catalog and Storefront API.

Using Account API

See AccountAPI Data Model for the available entities in the Account API data model.

CData Python Connector for BigCommerce

BigCommerce Data Model

Overview

This section shows the available API objects and provides more information on executing SQL to BigCommerce APIs.

Key Features

  • The connector models BigCommerce categories, customers, and orders as relational tables and views, allowing you to write SQL to query BigCommerce data.
  • Stored procedures allow you to execute operations to BigCommerce, including downloading and uploading objects.
  • Live connectivity to these objects means any changes to your BigCommerce account are immediately reflected when using the connector.

Views

Pre-defined Tables and Views are available for read or write access to data from BigCommerce.

Stored Procedures

The connector allows you to list your BigCommerce objects and download/upload data to them via Stored Procedures.

CData Python Connector for BigCommerce

Tables

The connector models the data in BigCommerce as a list of tables in a relational database that can be queried using standard SQL statements.

CData Python Connector for BigCommerce Tables

Name Description
Brands Gets the collection of brands.
Categories Returns Product Categories.
CategoryTrees Returns a list of category trees.
ChannelListings Returns a list of all Channel Listings for a specific channel.
Channels Manages and lists BigCommerce sales channels, supporting SELECT, INSERT, and UPDATE channel records.
Coupons test Create,list,update or delete coupons.
Currencies Returns data from Currencies table.
CustomerAddresses Returns a list of Customer Addresses. Returns the addresses belonging to a customer.
Customers Returns data from Customers table.
Locales Retrieves a list of locales for the store.
OrderItems Returns Items ordered for every order.
Orders Returns data from the Orders table.
OrderShipments Returns shipments and their corresponding orders.
PriceListRecords Returns a collection of price list records.
PriceLists Returns a collection of price records.
ProductBasicInformationLocales Overrides the basic information for the product in a channel locale.
ProductCustomFieldsLocales List of product custom fields with locale overrides.
ProductImageLocales List of product images overrides.
ProductImages Returns images registered for products.
ProductMetafields Returns a list of Product Metafields.
ProductModifierOptionsLocales List of product modifiers with locale overrides.
ProductOptions Returns data from Products table.
ProductOptionValues Returns data from Products table.
ProductPreOrderSettingsLocales Overrides for the product in a channel locale.
ProductReviews Returns reviews registered for products.
Products Returns data from products table.
ProductSeoInformationLocales Overrides for the product in a channel locale.
ProductStoreFrontLocales Overrides for the product in a channel locale.
ProductUrlLocales Overrides for the product in a channel locale.
ProductVariants Returns data from Products table.
SharedProductModifierOptionsLocale List of shared product modifiers with locale overrides.
ShippingMethods Lists all shipping methods.
ShippingZones Lists all shipping zones.

CData Python Connector for BigCommerce

Brands

Gets the collection of brands.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • Id supports the =, >, <, >=, <=, IN, and NOT IN comparisons.
  • Name supports the = comparison.
  • PageTitle supports the = comparison.

The rest of the filter is executed client-side within the connector. For example, the following queries are processed server-side:

SELECT * FROM Brands WHERE Id = 1;

SELECT * FROM Brands WHERE Id >= 1 AND Id <= 5;

SELECT * FROM Brands WHERE Id in (51,54);

SELECT * FROM Brands WHERE Id not in (51,54);

SELECT * FROM Brands WHERE PageTitle = 'modern';

SELECT * FROM Brands WHERE Name = 'Test';

Columns

Name Type ReadOnly Description
Id [KEY] Integer True

The id of the brand.

Name String False

The name of the brand. Must be unique.

PageTitle String False

The title shown in the browser while viewing the brand.

MetaKeywords String False

An array of meta keywords to include in the HTML.

MetaDescription String False

A meta description to include.

ImageURL String False

Image URL used for this category on the storefront.

SearchKeywords String False

A comma-separated list of keywords that can be used to locate this brand.

ItemURL String False

The custom URL for the product on the storefront.

ItemURLIsCustomized Boolean False

Returns true if the URL has been changed from its default state (the auto-assigned URL that BigCommerce provides).

CData Python Connector for BigCommerce

Categories

Returns Product Categories.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • Id supports the =, IN, and NOT_IN comparisons.
  • ParentId supports the =, IN, and NOT_IN comparisons.
  • Name supports the = and LIKE comparisons.
  • PageTitle supports the = and LIKE comparisons.
  • IsVisible supports the = comparison.
  • TreeId supports the =, IN, and NOT_IN comparisons.
  • CategoryUUID supports the =, IN, and NOT_IN comparisons.

The rest of the filter is executed client-side within the connector.

For example, the following queries are processed server-side:

SELECT * FROM Categories WHERE Id = 18;
SELECT * FROM Categories WHERE Id IN (19,20);
SELECT * FROM Categories WHERE Id NOT IN (19,20);
SELECT * FROM Categories WHERE Name = "test";
SELECT * FROM Categories WHERE Name LIKE "%test%";

Insert

To insert a category, specify at least the following columns: ParentId, Name, TreeId and Description.

INSERT INTO Categories (ParentId, Name, Description, TreeId) VALUES (27, 'Car Interior121', 'Accessories for testing car.', 1);

Update


UPDATE Categories SET Description= 'Testing123' WHERE Id = 18

Delete


DELETE FROM Categories WHERE Id = 18

Columns

Name Type ReadOnly Description
Id [KEY] Integer True

Unique ID of the Category.

ParentId Integer False

The unique numeric ID of the category parent.

Name String False

The name displayed for the category. Name is unique with respect to the categoryʼs siblings.

Description String False

The product description, which can include HTML formatting.

Views Integer False

Number of views the category has on the storefront.

SortOrder Integer False

Priority this category will be given when included in the menu and category pages.

PageTitle String False

Custom title for the category page.

MetaKeywords String False

Custom meta keywords for the category page.

MetaDescription String False

Custom meta description for the category page.

LayoutFile String False

A valid layout file.

ImageUrl String False

Image URL used for this category on the storefront.

IsVisible Boolean False

Flag to determine whether the product should be displayed to customers browsing the store.

SearchKeywords String False

A comma-separated list of keywords that can be used to locate the category when searching the store.

DefaultProductSort String False

Determines how the products are sorted on category page load.

UrlPath String False

URL Path.

IsCustomized Boolean False

Flag to determine whether the url is customized.

TreeId Integer False

The ID of the category tree.

CategoryUUID String True

An additional unique identifier for the category.

CData Python Connector for BigCommerce

CategoryTrees

Returns a list of category trees.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • Id supports the = and IN comparisons.
  • Channels supports the = and IN comparisons.

The rest of the filter is executed client-side within the connector.

For example, the following queries are processed server-side:

SELECT * FROM CategoryTrees WHERE Id = 1;
SELECT * FROM CategoryTrees WHERE Id IN (1,2); 
SELECT * FROM CategoryTrees WHERE Channels = '[1]';
SELECT * FROM CategoryTrees WHERE Channels IN ('[1]', '[100]');

Insert

To insert a category tree, specify the Channel ID in the Channels field. The Channel ID determines the channel where the category tree is created. You can only assign a category tree to one channel. See the example query below.

INSERT INTO CategoryTrees (Name,channels) VALUES ('name','[5]');

Update

The channels field must be absent when updating a category tree. This field is currently unsupported during a category tree update.

UPDATE CategoryTrees SET name = 'test' WHERE Id = 10;

Delete


DELETE FROM CategoryTrees WHERE Id = 18

Columns

Name Type ReadOnly Description
Id [KEY] Integer True

Unique ID of the Category Tree.

Name String False

The name displayed for the category Tree.

Channels String False

Channel ID

CData Python Connector for BigCommerce

ChannelListings

Returns a list of all Channel Listings for a specific channel.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • Listingid supports the = comparison.
  • ChannelId supports the = comparison.
  • Datecreated supports the =, >, <, >=, and <= comparisons.
  • Datemodified supports the =, >, <, >=, and <= comparisons.

The rest of the filter is executed client-side within the connector. For example, the following queries are processed server-side:

SELECT * FROM ChannelListings WHERE ChannelId = 667159 AND ListingId = 882998595

Insert

To insert a channel listing, specify the following columns: ProductId, State, Variants, ChannelId, and Name.

INSERT INTO ChannelListings (Productid, State, Variants, ChannelId) VALUES (12345, 'active', 'test', 667159)

Update

The following example illustrates how to update ChannelListings:

UPDATE ChannelListings SET name = 'Test' WHERE ChannelId = 667159

Columns

Name Type ReadOnly Description
ListingId [KEY] Integer True

The Id of the channel listing that has been created, returned, or updated.

ChannelId [KEY] Integer False

The Id of the channel associated with this channel listing.

Datecreated Datetime True

Date on which the channel listing was first created.

Datemodified Datetime True

Date on which the channel listing was most recently changed.

Name String False

Name of the product for this channel listing specifically. This is an optional field that can be used to override the product name in the catalog.

Description String True

Description of the product for this channel listing specifically. This is an optional field that can be used to override the product description in the catalog.

Productid Integer False

The Id of the product associated with this channel listing.

State String False

The state of the product assignment or channel listing. Possible values are: active, disabled, error, pending, pending_disable, pending_delete, partially_rejected, queued, rejected, submitted, or deleted.

Variants String False

Product variant associated with the channel listing.

ExternalId String False

Associated Id within a system or platform outside of BigCommerce.

CData Python Connector for BigCommerce

Channels

Manages and lists BigCommerce sales channels, supporting SELECT, INSERT, and UPDATE channel records.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • Id supports the = comparison.
  • Datecreated supports the =, >, <, >=, and <= comparisons.
  • Datemodified supports the =, >, <, >=, and <= comparisons.

The rest of the filter is executed client-side within the connector. For example, the following queries are processed server-side:

SELECT * FROM Channels

Insert

To insert a channel, specify the following columns: Name, Type, Platform, and Status.

INSERT INTO Channels (Type, Platform, Status, Name) VALUES ('pos', 'square', 'active', 'tests');

Update

The following example illustrates how to update Channels:

UPDATE Channels SET Name = 'tests' WHERE ID = 123

Columns

Name Type ReadOnly Description
Id [KEY] Integer True

The Id of the channel.

ConfigMetaAppId Integer False

The unique Id given to an app registered in DevTools.

sections String False

If set, when the app is loaded within the control panel, the navigation sections are directly embedded in the control panel navigation.

Datecreated Datetime True

Date on which the channel was first created.

Datemodified Datetime True

Date on which the channel was most recently changed.

Externalid String False

Associated Id within a system or platform outside of BigCommerce.

Iconurl String False

Link to the platform icon.

Isenabled Boolean False

A channel with a status of prelaunch, active, or connected has 'is_enabled' set to true. A channel with a status of inactive, disconnected, archived, deleted, or terminated has 'is_enabled' set to false.

IslistableFromUi Boolean False

Indicates whether a channel can create listings from the BigCommerce UI. The default value for this field is based on the channel type and platform combination if not specified on create.

Isvisible Boolean False

Indicates whether a channel is visible within the BigCommerce merchant admin UI (control panel). If false, the channel does not show in Channel Manager nor in any channels dropdown throughout the UI. The default value for this field is true if not specified on create.

Name String False

Name of the channel as it appears to merchants in the control panel.

Platform String False

The name of the platform for the channel platform and type must be a valid combination.

Status String False

The status of the channel type, platform, and status must be a valid combination. Possible values are: active, prelaunch, inactive, connected, disconnected, archived, deleted, or terminated. Terminated is not valid for update or insert requests.

Type String False

The type of channel platform and type must be a valid combination. Possible values are: pos, marketplace, storefront, or marketing.

CData Python Connector for BigCommerce

Coupons

test Create,list,update or delete coupons.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • Id supports the =, >, <, >=, and <= comparisons.
  • Name supports the = comparison.
  • Type supports the = and != comparisons.
  • Code supports the = comparison.

The rest of the filter is executed client-side within the connector.

For example, the following queries are processed server-side:

SELECT * FROM Coupons WHERE Id = 1 

SELECT * FROM Coupons WHERE Id >= 1 AND Id <= 5

SELECT * FROM Coupons WHERE Name = "test"

Insert

To insert a coupon, specify at least the following columns: Name, Type, Code, Amount, AppliesToEntity and AppliesToIds.

INSERT INTO Coupons (Name, Type, Code, Amount, AppliesToEntity, AppliesToIds) VALUES ('CouponName', 'free_shipping', 'CN100', 500, 'products', '88, 80')

Update


UPDATE Coupons SET Code = 'ABC' WHERE Id = 12

Delete


DELETE FROM Coupons WHERE Id = 16

Columns

Name Type ReadOnly Description
Id [KEY] Integer True

The coupons ID.

Name String False

The name of the coupon.

Type String False

Type of the coupon. Must be one of per_item_discount,per_total_discount,shipping_discount,free_shipping or percentage_discount.

The allowed values are per_item_discount, percentage_discount, per_total_discount, shipping_discount, free_shipping, promotion.

Amount Decimal False

The discount to apply to an order, as either an amount or a percentage.

MinPurchase Decimal False

Specifies a minimum value that an order must have before the coupon can be applied to it.

Expires Datetime False

Specifies when a coupon expires.

Enabled Boolean False

If the coupon is enabled, this fields value is true; otherwise, false.

Code String False

The coupon code that customers uses to receive their discounts.

AppliesToEntity String False

What the discount applies to. Can be products or categories.

AppliesToIds String False

IDs of either the products or categories

NumUses Integer True

Number of times this coupon has been used.

MaxUses Integer False

Maximum number of times this coupon can be used.

MaxUsesPerCustomer Integer False

Maximum number of times each customer can use this coupon.

DateCreated Datetime False

Date Created

ShippingMethods String False

List of shipping-method names.

RestrictedToCountries String False

Countries where the coupon is restricted.

CData Python Connector for BigCommerce

Currencies

Returns data from Currencies table.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the Id column, which supports the = comparison.

The rest of the filter is executed client-side within the connector.

For example, the following queries are processed server-side:

SELECT * FROM Currencies WHERE Id = 1

Insert

To insert a currency, specify at least the following columns: Code, Name, ExchangeRate, Token, TokenLocation, DecimalToken, ThousandsToken, and DecimalPlaces.

INSERT INTO Currencies (Code, Name, ExchangeRate, Token, TokenLocation, DecimalToken, ThousandsToken, DecimalPlaces) VALUES ('EUR','Euro', '3.0','$','left','.',',','2')

Update


UPDATE Currencies SET Name = 'Testing123' WHERE Id = 2

Delete


DELETE FROM Currencies WHERE Id = 3

Columns

Name Type ReadOnly Description
Id [KEY] Integer True

Id of the currency.

IsDefault Boolean True

Specifies whether this is the store's default currency.

Code String False

Three-letter ISO 4217 code for this currency.

Name String False

Name of this currency.

ExchangeRate Double False

Amount of this currency that is equivalent to one U.S. dollar.

CountryIso String False

Two-letter ISO Alpha-2 code.

AutoUpdate Boolean False

Whether to autoupdate currency data.

TokenLocation String False

Symbol for this currency.

Token String False

Name of the currency.

DecimalToken String False

Symbol used as the decimal separator in this currency.

ThousandsToken String False

Symbol used as the thousands separator in this currency.

DecimalPlaces Integer False

Number of decimal places to show for this currency.

Enabled Boolean False

Indicates If the currency is active on the store.

IsTransactional Boolean False

Indicates if the currency is set as transactional or not. False means display only currency.

LastUpdated Datetime True

Date the currency was last updated, created or modified.

CData Python Connector for BigCommerce

CustomerAddresses

Returns a list of Customer Addresses. Returns the addresses belonging to a customer.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • Id supports the = and IN comparisons.
  • CustomerId supports the = and IN comparisons.

The rest of the filter is executed client-side within the connector.

For example, the following queries are processed server-side:

SELECT * FROM CustomerAddresses WHERE Id = 1 

SELECT * FROM CustomerAddresses WHERE CustomerId = 5

Insert

To insert a customer address, specify at least the following columns: CustomerId, FirstName, LastName, City, CountryCode, Address1, StateOrProvince, and PostalCode.
INSERT INTO CustomerAddresses (CustomerId, FirstName, LastName, City, CountryCode, Address1, StateOrProvince, PostalCode) VALUES ('1', 'FirstName', 'LastName', 'Chapel Hill', 'US', '101 Europa Dr', 'NC', '27517')

Update


UPDATE CustomerAddresses SET FirstName = 'Testing123' WHERE Id = 14

Delete


DELETE FROM CustomerAddresses WHERE Id = 3

Columns

Name Type ReadOnly Description
Id [KEY] Integer False

ID of this customer address.

CustomerId Integer False

ID of the associated customer.

FirstName String False

The customers first name.

LastName String False

The customers last name.

Company String False

The customers company name.

Address1 String False

The customers street address, line 1.

Address2 String False

The customers street address, line 2.

City String False

The customers city/town/suburb.

StateOrProvince String False

The customers state/province.

PostalCode String False

The customers ZIP or postal code.

Country String False

The customers country. Must be the full country name.

CountryCode String False

2-letter ISO Alpha-2 code for the customers country.

Phone String False

The customers phone number.

AddressType String False

The type of the address.

CData Python Connector for BigCommerce

Customers

Returns data from Customers table.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • Id supports the = and IN comparisons.
  • Company supports the = and IN comparisons.
  • Email supports the = and IN comparisons.
  • DateCreated supports the =, <, >, <=, and >= comparisons.
  • DateModified supports the =, <, >, <=, and >= comparisons.
  • CustomerGroup supports the = and IN comparisons.
  • StoreCreditAmounts supports the = comparison.
  • RegistrationIpAddress supports the = and IN comparisons.

The rest of the filter is executed client-side within the connector.

For example, the following queries are processed server-side:

SELECT * FROM Customers WHERE Id = 1 

SELECT * FROM Customers WHERE Company = 'DemoFirst'

SELECT * FROM Customers WHERE Email = 'new@gmail.com'

SELECT * FROM Customers WHERE DateCreated > '2021-09-01 11:25:37.0' 

SELECT * FROM Customers WHERE DateModified <= '2023-10-12 02:05:43.0'

Insert

To insert a customer, specify at least the following columns: FirstName, LastName, and Email.

INSERT INTO Customers (FirstName, LastName, Email) VALUES ('Testing4321', 'Test', 'testing123@gmail.com')

Update


UPDATE Customers SET FirstName = 'testing345' WHERE Id = 5075

Delete


DELETE FROM Customers WHERE Id = 16

Columns

Name Type ReadOnly Description
Id [KEY] Integer True

Unique numeric ID of this customer.

Company String False

The name of the company for which the customer works.

FirstName String False

First name of the customer.

LastName String False

Last name of the customer.

Email String False

Email address of the customer.

Phone String False

Phone number of the customer.

DateCreated Datetime True

Date on which the customer registered from the storefront or was created in the control panel.

DateModified Datetime True

The date on which the customer was modified.

CustomerGroup Integer False

The group to which the customer belongs.

Notes String False

Store Owner notes on the customer.

TaxExemptCategory String False

Used to identify customers who fall into special sales-tax categories.

StoreCreditAmounts Decimal False

Amount of Store Credit

RegistrationIpAddress String False

The IP address from which this customer was registered.

AcceptsProductReviewAbandonedCartEmails Boolean False

Determines if the customer is signed up to receive either product review or abandoned cart emails or receive both emails.

ForcePasswordReset Boolean True

If true,this customer will be forced to change password on next login.

ChannelIds String False

Array of channel ids the Customer has access to.

FullName String True

Full name of the customer, combination of the first and last names

CData Python Connector for BigCommerce

Locales

Retrieves a list of locales for the store.



Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • InputChannelId supports the = comparison.
The rest of the filter is executed client-side within the connector. For example, the following queries are processed server-side:
SELECT * FROM Locales;
SELECT * FROM Locales WHERE InputChannelId = '1';

Insert

You can add a new locale to a channel.

INSERT INTO Locales (Code, InputChannelId, Status) VALUES ('fr', '1', 'ACTIVE');

Update

You can update an existing locale. Code and InputChannelId are required in WHERE clause.

UPDATE Locales SET Status = 'INACTIVE' WHERE Code = 'fr' AND InputChannelId = '1';
UPDATE Locales SET IsDefault = true WHERE Code = 'en' AND InputChannelId = '1';

Delete

You can remove a locale from a channel.

DELETE FROM Locales WHERE Code = 'fr' AND InputChannelId = '1';

Columns

Name Type ReadOnly Description
Code [KEY] String False

The code of the locale.

InputChannelId [KEY] String False

The ID of the channel.

StoreId String False

The ID of the object.

Status String False

The status of the locale.

The allowed values are ACTIVE, INACTIVE.

IsDefault Bool False

Indicates whether the locale is the default.

CData Python Connector for BigCommerce

OrderItems

Returns Items ordered for every order.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • Id supports the = comparison.
  • OrderId supports the = comparison.

The rest of the filter is executed client-side within the connector.

For example, the following queries are processed server-side:

SELECT * FROM OrderItems WHERE Id = 1 

SELECT * FROM OrderItems WHERE OrderId = 100

Inserting an Existing Product

To insert an existing product to OrderItems for a specified order, you must specify the order options for that table. For this reason, before inserting an existing product to the OrderItems, you must populate a temporary OrderItemOptionValues table with the desired options for the selected product and use this table as a value for the LinkedOrderOptions pseudo-column during insertion:

INSERT INTO OrderItemOptionValues#TEMP (Id, Value) Values (117, 177);
INSERT INTO OrderItemOptionValues#TEMP (Id, Value) Values (116, 176);
INSERT INTO OrderItems (OrderId, ProductId, QuantityOrdered, LinkedOrderOptions) VALUES (1104, 960, 3, OrderItemOptionValues#TEMP)");

Note: The OrderItemOptionValue inserted to the temporary table must belong to the product that is being inserted into OrderItems. To verify this, check the ProductOptionValues table.

Alternatively, you can use the LinkedOrderOptions as an aggregate to insert a order item. For Example:

INSERT INTO OrderItems (OrderId, ProductId, QuantityOrdered, LinkedOrderOptions) VALUES (1104, 960, 3, '[{\\\"option_id\\\":101, \\\"value\\\":1}]')

Inserting a New Product

New, custom products, can be added to the OrderItems table as follows:

INSERT INTO OrderItems (OrderId, Name, CustomSKU, PriceIncTax, PriceExTax, QuantityOrdered) VALUES (1107, 'TSS Phone Case', 'PHC-232453', 6.55, 5.75, 1);

Note: OrderItems does not support UPDATE or DELETE operations. Once items have been added to an order, they cannot be removed or modified.

Columns

Name Type ReadOnly Description
Id [KEY] Integer True

Numeric ID of this product within this order.

ProductId Integer False

Numeric ID of the product.

CustomSKU String False

User defined product code/stock keeping unit (SKU).

OrderId Integer False

Numeric ID of the associated order.

Name String False

The product name.

PriceExTax Decimal False

The price of the product, excluding tax.

PriceIncTax Decimal False

The price of the product, including tax.

QuantityOrdered Integer False

Quantity of the product ordered.

QuantityShipped Decimal True

Quantity of the product shipped.

TotalExtax Decimal True

Total base price, excluding tax.

TotalIncTax Decimal True

Total base price, including tax.

IsRefunded Boolean True

Whether the product has been refunded.

ExternalId String False

ID of the order in another system.

AppliedDiscounts String True

Array of objects containing discounts applied to the product.

BaseCostPrice Decimal False

The product's cost price.

BasePrice Decimal False

The product’s base price.

BaseTotal Decimal False

Total base price.

BaseWrappingCost Decimal False

The value of the base wrapping cost.

BinPickingNumber String False

Bin picking number for the physical product.

Brand String False

The product's brand.

ConfigurableFields String False

The price of the product, excluding tax.

CostPriceExTax Decimal False

The product's cost price excluding tax.

CostPriceIncTax Decimal False

The product's cost price including tax.

CostPriceTax Decimal False

Tax applied to the product’s cost price.

Depth Decimal False

Depth of the product.

DiscountedTotalIncTax Decimal False

Represent the correct total amount of the line item after deducting all the discounts and including the tax.

EbayItemId String False

Item ID for this product on eBay.

EbayTransactionId String False

Transaction ID for this product on eBay.

EventDate Datetime False

Date of the promotional event/scheduled delivery.

EventName String False

Name of promotional event/delivery date.

FixedShippingCost Decimal False

Fixed shipping cost for this product.

FulfillmentSource String False

The source of the fulfillment.

GiftCertificateId String False

ID of the associated gift certificate.

Height Decimal False

Height of the product

IsBundledProduct Boolean False

Whether this product is bundled with other products.

NameCustomer String False

The product name that is shown to customer in storefront.

NameMerchant String False

The product name that is shown to merchant in Control Panel.

OptionSetId Integer False

Numeric ID of the option set applied to the product.

OrderAddressId Integer False

Numeric ID of the associated order address. Value is 0 for items that are not fulfilled by a pickup method.

OrderPickupMethodId Integer False

ID of the pickup fulfillment method for this item. Default value is 0 when the item is not fulfilled by pickup method.

ParentOrderProductId Integer False

ID of a parent product.

PriceTax Decimal False

Amount of tax applied to a single product.

RefundAmount Decimal False

The amount to be refunded.

ReturnId Integer False

Numeric ID for the refund.

TotalTax Decimal False

Total tax applied to products.

Type String False

Type of product.

The allowed values are physical, digital.

Upc String False

Universal Product Code. Can be written to for custom products and catalog products.

VariantId Integer False

Products variant_id.

Weight Decimal False

Weight of the product.

Width Decimal False

Width of the product.

WrappingCostExTax Decimal False

The value of the wrapping cost, excluding tax.

WrappingCostIncTax Decimal False

The value of the wrapping cost, including tax.

WrappingCostTax Decimal False

Tax applied to gift-wrapping option.

WrappingId Integer False

The price of the product, excluding tax.

WrappingMessage String False

Message to accompany gift-wrapping option.

WrappingName String False

Name of gift-wrapping option.

LinkedOrderOptions String False

Column for the aggregate table name holding option values.

CData Python Connector for BigCommerce

Orders

Returns data from the Orders table.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • Id supports the =, <, >, <=, and >= comparisons.
  • DateCreated supports the =, >, <, >=, and <= comparisons.
  • DateModified supports the =, >, <, >=, and <= comparisons.

The rest of the filter is executed client-side within the connector. For example, the following queries are processed server-side:

SELECT * FROM Orders WHERE Id = 1

SELECT * FROM Orders WHERE Id > 104

SELECT * FROM Orders WHERE Id < 104

SELECT * FROM Orders WHERE Id >= 104

SELECT * FROM Orders WHERE Id <= 104

Insert

To insert an order, you must include at least one order item in the INSERT query for that order. First, populate a temporary OrderItems table with the items you want to include in the order. Then, use this table as a source for the LinkedProducts pseudo-column during the insertion process:

INSERT INTO OrderItems#TEMP (ProductId, QuantityOrdered) VALUES (961, 4);

INSERT INTO OrderItems#TEMP (ProductId, QuantityOrdered) VALUES (962, 3);

INSERT INTO Orders (CustomerId, LinkedProducts, StatusId, ItemsTotal, ItemsShipped, PaymentMethod, OrderIsDigital, BillingFirstName, BillingLastName, BillingCompany, BillingCountry, BillingZip, BillingState, BillingEmail, BillingPhone) VALUES (1, OrderItems#TEMP, 4, 6, 2, 'cash', 'true', 'TSS', 'Dev', 'London Corp.', 'United Kingdom', 23433, 'London', 'tss@dev.com', '+355534445');

Alternatively, you can insert orders using LinkedProducts as an aggregate.

 
INSERT INTO Orders (StatusId, CustomerId, BillingFirstName, BillingLastName, BillingStreet1, BillingCity, BillingZip, BillingCountry, BillingState, BillingEmail, BillingPhone, LinkedProducts) VALUES (0, 5253, 'firstname', 'lastname', 'street 1', 'test2', '175024', 'Australia', 'Sent nojses', 'test1@gmail.com', '9816198077', '[{\\\"product_id\\\":962, \\\"quantity\\\":1}]'); 

Update

The following example illustrates how to update Orders:

UPDATE Orders SET StaffNotes ='Testing123' WHERE Id = 103

Delete

The following example illustrates how to delete a row in Orders whose Id equals 3:

DELETE FROM Orders WHERE Id = 3

Columns

Name Type ReadOnly Description
Id [KEY] Integer True

The Id of the order.

CustomerId String False

The Id of the customer assigned to this order.

DateCreated Datetime True

The date of creation for the order.

DateModified Datetime True

The last modification date of the order.

DateShipped Datetime True

The date of shipment for the order.

StatusId String False

The Id of the status for this order.

CartId String True

The Id of the cart from which this order is assigned.

Status String True

Order Statuses.

TotalTax Decimal True

The total value of the order.

SubtotalTax Decimal True

The value for subtotal tax.

SubtotalExTax Decimal False

The value for subtotal, excluding tax.

SubtotalIncTax Decimal False

The value for subtotal, including tax.

ShippingCostExTax Decimal False

The value of shipping cost, excluding tax.

ShippingCostIncTax Decimal False

The value of shipping cost, including tax.

HandlingCostExTax Decimal False

The value of handling cost, excluding tax.

HandlingCostIncTax Decimal False

The value of handling cost, including tax.

IpAddress String False

IPv4 Address of the customer, if known.

WrappingCostExTax Decimal False

The value of wrapping cost, excluding tax.

WrappingCostIncTax Decimal False

The value of wrapping cost, including tax.

TotalExTax Decimal False

The total value of the order, excluding tax.

TotalIncTax Decimal False

The total value of the order, including tax.

HandlingCostTax Decimal True

The value of handling cost.

HandlingCostTaxClassId Integer True

The Id of handling cost.

ShippingCostTax Decimal True

The value of shipping cost.

ItemsTotal Decimal False

The total number of items in the order.

ItemsShipped Decimal False

The total number of items that have been shipped.

PaymentMethod String False

The payment method for this order.

PaymentProviderId String False

The external Transaction ID/Payment ID within this order's payment provider (if a payment provider was used).

PaymentStatus String True

The payment status for this order.

RefundedAmount Decimal False

The amount refunded from this transaction.

GiftCertificateAmount Decimal True

Gift Certificate Amount.

CurrencyId String True

The ID of the currency being used in this transaction.

CurrencyCode String True

The currency code of the display currency.

CurrencyExchangeRate Decimal True

The exchange rate between the default currency and display currency of store.

DefaultCurrencyId String True

The ID of the default currency for the store.

DefaultCurrencyCode String False

The currency code of the transactional currency the shopper pays in.

StaffNotes String False

Any additional notes for staff.

CustomerMessage String False

Message that the customer entered.

DiscountAmt Decimal False

Amount of discount for this transaction.

EbayOrderId String False

Ebay order number if order is placed through Ebay.

GeoIpCountryIso2 String False

The country where the customer made the purchase, in ISO2 format.

ShippingAddressCount Decimal True

The number of shipping addresses associated with this transaction.

CouponDiscount Decimal True

Discount of the coupon.

OrderSource String True

Source of the order.

IsDeleted Boolean True

Indicates whether the order was deleted (archived).

OrderIsDigital Boolean False

Indicates whether this is an order for digital products.

ExternalSource String False

A value identifying the system used to generate the order (for orders submitted or modified via the API).

ExternalId String False

ID of the order in another system.

ExternalMerchantId String False

Id of the external merchant.

ChannelId String False

Shows where the order originated.

TaxProviderId String False

BasicTaxProvider - Tax is set to manual; AvaTaxProvider - This is for when the tax provider has been set to automatic and the order was NOT created by the API; (blank) - When the tax provider is unknown.

ProductsUrl String False

Url of the products.

ProductsResource String False

Resource of the products.

BillingFirstName String False

Addressee first name.

BillingLastName String False

Addressee last name.

BillingCompany String False

Addressee company.

BillingStreet1 String False

Street address (first line).

BillingStreet2 String False

Street address (second line).

BillingCity String False

Addressee city

BillingZip String False

ZIP or postal code

BillingCountry String False

Addressee's country

BillingCountryIso2 String False

Addressee's country code

BillingState String False

The name of the state or province. Should be spelled out in full, for example, California.

BillingEmail String False

Recipient's email address.

BillingPhone String False

Recipient's telephone number.

BaseHandlingCost Decimal False

The value of the base handling cost.

BaseShippingCost Decimal False

The value of the base shipping cost.

BaseWrappingCost Decimal False

The value of the base wrapping cost.

Pseudo-Columns

Pseudo column fields are used to enable the user to INSERT Fields that are non-readable but required during creation of new records.

Name Type Description
LinkedProducts String

Column for the aggregate table name holding order products.

CData Python Connector for BigCommerce

OrderShipments

Returns shipments and their corresponding orders.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • Id supports the = comparison.
  • OrderId supports the = comparison.

The rest of the filter is executed client-side within the connector.

For example, the following queries are processed server-side:

SELECT * FROM OrderShipments WHERE Id = 1 

SELECT * FROM OrderShipments WHERE OrderId = 1428

Insert

To insert a order shipment, at least one shipment item must be attached to the INSERT query. First, populate a temporary ShipmentItems table with the items you want to include in the shipment. Then, use this table as the value for the LinkedProducts pseudo-column during insertion:

INSERT INTO ShipmentItems#TEMP (Id, Quantity) VALUES (2519, 1);
INSERT INTO OrderShipments (OrderId, OrderAddressId, LinkedProducts) VALUES (1106, 1007, ShipmentItems#TEMP);

Columns

Name Type ReadOnly Description
Id [KEY] Integer True

Numeric Id of this shipment within this order.

OrderId [KEY] Integer False

Numeric Id of the associated order.

DateCreated Datetime True

Creation date for the shipment.

TrackingNumber String False

Tracking number of the shipment.

TrackingCarrier String False

Tracking carrier for the shipment.

TrackingLink String True

Returns a tracking link from the shipping service.

ShippingProvider String False

Enum of the BigCommerce shipping-carrier integration/module. Possible values are: auspost, canadapost, endicia, usps, fedex, ups, upsready, upsonline, shipperhq, or royalmail.

ShippingMethod String False

Additional information to describe the method of shipment (for example, Standard, Ship by Weight, or Custom Shipment). Can be used for live quotes from certain shipping providers. If different from shipping_provider, shipping_method should correspond to tracking_carrier.

Comments String False

Comments the shipper wishes to add.

OrderAddressId Integer False

Id of this shipping address.

CustomerId String False

Id of this order’s customer.

ShippingProviderDisplayName String True

The human-readable name for the shipping_provider.

MerchantShippingCost Decimal True

The shipping merchant cost.

BillingAddressCity String True

The billing address city.

BillingAddressCompany String True

The billing address company.

BillingAddressCountry String True

The billing address country.

BillingAddressCountryIso2 String True

The billing address country iso2.

BillingAddressEmail String True

The email of the Addressee.

BillingAddressFirstName String True

Addressee's first name.

BillingAddressLastName String True

Addressee's last name.

BillingAddressPhone String True

Addressee's phone.

BillingAddressState String True

Addressee's state.

BillingAddressStreet1 String True

Street address (first line).

BillingAddressStreet2 String True

Street address (second line).

BillingAddressZip String True

ZIP or postal code.

LinkedProducts String False

Column for the aggregate table name holding order products.

CData Python Connector for BigCommerce

PriceListRecords

Returns a collection of price list records.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • CalculatedPrice supports the = comparison.
  • DateCreated supports the =, >, <, >=, and <= comparisons.
  • DateModified supports the =, >, <, >=, and <= comparisons.
  • ProductId supports the = comparison.
  • PriceListId supports the = comparison.
  • VariantId supports the = comparison.
  • Sku supports the = comparison.
  • Currency supports the = comparison.
  • Price supports the = comparison.
  • SalePrice supports the = comparison.
  • RetailPrice supports the = comparison.
  • MapPrice supports the = comparison.

The rest of the filter is executed client-side within the connector. For example, the following queries are processed server-side:

SELECT * FROM PriceListRecords WHERE PriceListId = 1 

SELECT * FROM PriceListRecords WHERE PriceListId = 1 AND SalePrice = 23

SELECT * FROM PriceListRecords WHERE PriceListId = 1 AND MapPrice = 17.99

SELECT * FROM PriceListRecords WHERE PriceListId = 1 AND VariantId = 361 AND Currency = 'USD'

Bulk Update

To update a price list record, specify the following columns: VariantId, Currency, Price, and PriceListId.

INSERT INTO PriceListRecords#TEMP (VariantId, Currency, Price, SalePrice, PriceListId) VALUES (361, 'USD', 27, 23, 1)
INSERT INTO PriceListRecords#TEMP (VariantId, Currency, Price, SalePrice, PriceListId) VALUES (362, 'USD', 28, 24, 1)
UPDATE PriceListRecords (VariantId, Currency, Price, SalePrice) SELECT VariantId, Currency, Price, SalePrice FROM PriceListRecords#TEMP

Bulk Update Using Aggregates:

INSERT INTO PriceListRecords#TEMP (VariantId, Currency, Price, SalePrice, PriceListId, BulkPricingTiers) VALUES (361, 'USD', 27, 23, 1,
                   '{ 
                    \"quantity_min\": 10," 
                    \"quantity_max\" : 12," 
                     \"type\" : \"percent\","
                      \"amount\": 1
                    }'
UPDATE PriceListRecords ( VariantId, Currency, Price, SalePrice, BulkPricingTiers) SELECT VariantId, Currency, Price, SalePrice, BulkPricingTiers FROM PriceListRecords#TEMP

Columns

Name Type ReadOnly Description
CalculatedPrice Double True

The price of the variant as seen on the storefront if a price record is in effect

DateCreated Datetime True

The date of creation for the Price Entry.

DateModified Datetime True

The last modification date of the Price Entry.

ProductId Integer True

The id of the Product this Price Record's variant_id is associated with.

PriceListId [KEY] Integer True

The Price List ID with which this price set is associated

VariantId [KEY] Integer False

The variant with which this price set is associated.

Sku String False

The variant with which this price set is associated

Currency [KEY] String False

The 3-letter currency code with which this price set is associated

Price Double False

The list price for the variant mapped in a Price List

SalePrice Double False

The sale price for the variant mapped in a Price List

RetailPrice Double False

The retail price for the variant mapped in a Price List

MapPrice Double False

The MAP (Manufacturers Advertised Price) for the variant mapped in a Price List

BulkPricingTiers String False

The minimum quantity of associated variant in the cart needed to qualify for this tiers pricing

QuantityMin Integer False

The minimum quantity of associated variant in the cart needed to qualify for this tiers pricing

QuantityMax Integer False

The maximum allowed quantity of associated variant in the cart to qualify for this tiers pricing.

QuantityType String False

The type of adjustment that is made.

QuantityAmount Double False

The maximum allowed quantity of associated variant in the cart to qualify for this tiers pricing.

CData Python Connector for BigCommerce

PriceLists

Returns a collection of price records.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • Id supports the = comparison.
  • DateCreated supports the =, >, <, >=, and <= comparisons.
  • DateModified supports the =, >, <, >=, and <= comparisons.
  • Name supports the = and LIKE comparisons.

The rest of the filter is executed client-side within the connector. For example, the following queries are processed server-side:

SELECT * FROM PriceLists WHERE Id = 1 

SELECT * FROM PriceLists WHERE DateCreated = '2021-05-26'

SELECT * FROM PriceLists WHERE DateModified = '2021-05-26'

SELECT * FROM PriceLists WHERE Name LIKE 'Wholesale group1'

Insert

To insert a price list, specify the following columns: Name and Active.

INSERT INTO PriceLists (Name, Active) VALUES ('Wholesalegroup', false)

Update

To update a price list, specify the following columns: Name and Id.

UPDATE PriceLists SET Name = 'Wholesalegroup' WHERE Id = '4'

Delete

To delete a price list, specify the Id column.

DELETE From PriceLists WHERE Id = '4'

Columns

Name Type ReadOnly Description
Id [KEY] Integer True

ID of the PriceList.

Active Boolean False

The status of the PriceList.

DateCreated Datetime True

The date of creation for the PriceList.

DateModified Datetime True

The last modification date of the PriceList.

Name String False

The name of the PriceList.

CData Python Connector for BigCommerce

ProductBasicInformationLocales

Overrides the basic information for the product in a channel locale.



Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • ChannelId supports the = comparison.
  • LocaleId supports the = comparison.

The rest of the filter is executed client-side within the connector.

For example, the following queries are processed server-side:

SELECT * FROM ProductBasicInformationLocales;
SELECT * FROM ProductBasicInformationLocales WHERE ChannelId = '1' AND LocaleId = 'en';

Update

You can set locale-specific basic information for a product including name and description. ProductId, ChannelId and LocaleId are required in WHERE clause to update the record. For example:

UPDATE ProductBasicInformationLocales SET BasicInformationName = 'Updated Product Name', BasicInformationDescription = 'Updated product description' WHERE ProductId = '111' AND ChannelId = '1' AND LocaleId = 'en';

Columns

Name Type ReadOnly Description
ProductId [KEY] String False

The unique identifiers of the products.

ChannelId [KEY] String False

Storefront channel.

LocaleId [KEY] String False

Locale in the channel.

BasicInformationDescription String False

Description for the product in a channel locale.

BasicInformationName String False

Name for the product in a channel locale.

CData Python Connector for BigCommerce

ProductCustomFieldsLocales

List of product custom fields with locale overrides.



Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • ProductId supports the = comparisons.
  • ChannelId supports the = comparison.
  • LocaleId supports the = comparison.

The rest of the filter is executed client-side within the connector.

For example, the following queries are processed server-side:

SELECT * FROM ProductCustomFieldsLocales;
SELECT * FROM ProductCustomFieldsLocales WHERE ChannelId = '1' AND LocaleId = 'en';
SELECT * FROM ProductCustomFieldsLocales WHERE ProductId = '111' AND ChannelId = '1' AND LocaleId = 'fr';

Update

You can update locale-specific overrides for product custom fields. ProductId, CustomFieldId, ChannelId and LocaleId must be specify in the WHERE clause. For example:

UPDATE ProductCustomFieldsLocales SET LocaleName = 'Custom Field Name FR', LocaleValue = 'Custom Value FR' WHERE ProductId = '111' AND CustomFieldId = '5' AND ChannelId = '1' AND LocaleId = 'fr';

Columns

Name Type ReadOnly Description
CustomFieldId [KEY] String False

The ID of the product custom field.

StoreId String False

The ID of the object.

ProductId String False

The ID of the product.

Name String False

Name of a product custom field.

Value String False

The value of a product custom field.

LocaleName String False

The overridden name of the custom field.

LocaleValue String False

The overridden value of the custom field.

LocaleIsVisible Bool False

Whether the custom field is visible.

ContextChannelId String False

The channel ID from the override context.

ContextLocale String False

The locale from the override context.

ChannelId String False

The channel ID for filtering overrides.

LocaleId String False

The locale code for filtering overrides.

CData Python Connector for BigCommerce

ProductImageLocales

List of product images overrides.



Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • ChannelId supports the = comparison.
  • LocaleId supports the = comparison.

The rest of the filter is executed client-side within the connector.

For example, the following queries are processed server-side:

SELECT * FROM ProductImageLocales
SELECT * FROM ProductImageLocales WHERE ChannelId = '1' AND LocaleId = 'en';

Update

You can update locale-specific overrides for product images.

UPDATE ProductImageLocales SET LocaleAltText = 'Image description FR', LocaleIsThumbnail = true WHERE ProductId = '111' AND ImageId = '265' AND ChannelId = '1' AND LocaleId = 'fr';

Delete

You can remove locale-specific overrides for product images.

DELETE FROM ProductImageLocales WHERE ProductId = '111' AND ImageId = '265' AND ChannelId = '1' AND LocaleId = 'fr';

Columns

Name Type ReadOnly Description
ImageId [KEY] String False

The ID of the product image.

StoreId String False

The ID of the object.

ProductId String False

The ID of the product.

LocaleAltText String False

The image description.

LocaleIsThumbnail Bool False

Indicates whether the image is a thumbnail.

LocaleSortOrder Long False

The order number of the image.

LocaleAddedToProduct Bool False

Indicates whether the image is added to the product and displayed on storefront.

ChannelId String False

Storefront channel ID.

LocaleId String False

Locale in a storefront channel.

CData Python Connector for BigCommerce

ProductImages

Returns images registered for products.

Table Specific Information

Select


SELECT * FROM ProductImages 

There are two alternatives to inserting new product images for BigCommerce, ImageFile and ImageUrl.

Insert using ImageFile

To insert a product image using ImageFile, you only need the ProductId and the local path of your ImageFile, which is written as a string using forward slashes as directory separators. BigCommerce does not allow for additional parameters when inserting an image using ImageFile. Therefore, including extra parameters returns an error.

INSERT INTO ProductImages (ProductId, ImageFile) VALUES (963, 'C:/dev/tests/v19/ProviderBigCommerce/DDHU.jpg');

Insert using ImageUrl

In addition to using ImageFiles, you can add product images by specifying image URLs of images on the web. When inserting image URLs, you can add additional fields to your query, such as Description, SortOrder, and IsThumbnail.

INSERT INTO ProductImages (ProductId, ImageUrl) VALUES (955, 'http://oi50.tinypic.com/kexbfq.jpg');

Update


UPDATE ProductImages SET Description = 'Testing123' WHERE Id = 265

Delete


DELETE FROM ProductImages WHERE Id = 3

Columns

Name Type ReadOnly Description
Id [KEY] Integer True

The Id of the image.

ProductId [KEY] Integer False

The Id of the corresponding product.

ImageFile String False

The local path to the original image file uploaded to BigCommerce.

StandardUrl String False

Standard Image URL for the product.

ThumbnailUrl String False

The thumbnail URL for this image. By default, this is the image size used on the category page and in side panels.

IsThumbnail Boolean False

Flag for identifying whether the image is used as the product's thumbnail.

SortOrder Integer False

The order in which the image will be displayed on the product page.

Description String False

The description for the image.

DateModified Datetime True

The last modification date of the image.

TinyUrl String False

Tiny URL for the product.

ZoomUrl String False

Zoom URL for the product.

Pseudo-Columns

Pseudo column fields are used to enable the user to INSERT Fields that are non-readable but required during creation of new records.

Name Type Description
ImageUrl String

The local path to the original image file to be uploaded to BigCommerce.

CData Python Connector for BigCommerce

ProductMetafields

Returns a list of Product Metafields.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the Id and ProductId columns, which support the = comparison.

The rest of the filter is executed client-side within the connector.

For example, the following queries are processed server-side:

SELECT * FROM ProductMetafields WHERE ProductId = 77
SELECT * FROM ProductMetafields WHERE ProductId = 77 and Id = 2

Insert

To insert a product metafield, specify at least the following columns: ProductId, Description, Namespace, Key, Value, and PermissionSet.

INSERT Into ProductMetafields(ProductId, Description, Namespace, Key, Value, PermissionSet) Values(88, test, Warehouse, location, 88, app_only)

Update


UPDATE ProductMetafields SET Description ='updatedtest' WHERE ProductId = 77 and Id = 3

Delete


DELETE FROM ProductMetafields WHERE ProductId = 77 and Id = 3

Columns

Name Type ReadOnly Description
Id [KEY] Integer True

Unique ID of the Metafield.

ProductId [KEY] Integer False

The Id of the corresponding product.

DateCreated Datetime True

Date and time of the metafield?s creation.

DateModified Datetime True

Date and time when the metafield was last updated.

Description String False

Description for the metafields.

Key String False

The name of the field.

Value String False

The value of the field,must enter a JSON formatted string for ShipperHQ metafields.

Namespace String False

Namespace for the metafield, for organizational purposes.

OwnerClientId String True

ID of metafield's creator.

PermissionSet String False

Determines the visibility and writeability of the field by other API consumers.Must be one of app_only, read, write, read_and_sf_access or write_and_sf_access.

The allowed values are app_only, read, write, read_and_sf_access, write_and_sf_access.

ResourceId Integer True

The ID of the resource with which the metafield is associated.

ResourceType String True

The type of resource with which the metafield is associated.

CData Python Connector for BigCommerce

ProductModifierOptionsLocales

List of product modifiers with locale overrides.



Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • ProductId supports the = comparisons. Required filter
  • ChannelId supports the = comparison. Required filter.
  • LocaleId supports the = comparison. Required filter.

The rest of the filter is executed client-side within the connector.

For example, the following queries are processed server-side:

SELECT * FROM ProductModifierOptionsLocales;
SELECT * FROM ProductModifierOptionsLocales WHERE ProductId = '80' AND ChannelId = '1' AND LocaleId = 'en';
SELECT * FROM ProductModifierOptionsLocales WHERE ChannelId = '1' AND LocaleId = 'fr';

Update

You can set locale-specific information for product modifiers. Each modifier type (checkbox, textField, dropdown, radioButtons, rectangleList, swatch, pickList, etc.) has specific columns for display name, default value, and values. You must specify the ModifierId, ProductId, ChannelId, and LocaleId in the WHERE clause. For example:

UPDATE ProductModifierOptionsLocales SET RectangleListLocaleDisplayName = 'Theme de vacances', RectangleListLocaleValues = '[{"valueId": "bc/store/productModifierValue/113", "label": "Anniversaire"}, {"valueId": "bc/store/productModifierValue/114", "label": "Noel"}]' WHERE ModifierId = '121' AND ProductId = '111' AND ChannelId = '2' AND LocaleId = 'en';

This table returns product modifiers with locale-specific overrides including display names, field values, default values, and option values for various modifier types.

Columns

Name Type ReadOnly Description
ModifierId [KEY] String False

The ID of the modifier.

ProductId [KEY] String False

The ID of the product.

ChannelId [KEY] String False

Storefront channel ID.

LocaleId [KEY] String False

Locale code in the storefront channel (e.g., en, fr).

StoreId String False

The ID of the store.

TypeName String False

The type of the modifier (e.g., CheckboxProductModifier, SwatchProductModifier).

DisplayName String False

The display name of the modifier.

IsRequired Bool False

Whether the modifier is required.

IsShared Bool False

Whether the modifier is shared across products.

CheckboxCheckedByDefault Bool False

For checkbox modifiers, whether it is checked by default.

CheckboxFieldValue String False

The field value for checkbox modifier.

CheckboxLocaleDisplayName String False

The localized display name for checkbox modifier.

CheckboxLocaleFieldValue String False

The localized field value for checkbox modifier.

DateFieldLocaleDisplayName String False

The localized display name for date field modifier.

FileUploadLocaleDisplayName String False

The localized display name for file upload modifier.

TextFieldDefaultValue String False

The default value for text field modifier.

TextFieldLocaleDisplayName String False

The localized display name for text field modifier.

TextFieldLocaleDefaultValue String False

The localized default value for text field modifier.

MultilineTextDefaultValue String False

The default value for multiline text field modifier.

MultilineTextLocaleDisplayName String False

The localized display name for multiline text field modifier.

MultilineTextLocaleDefaultValue String False

The localized default value for multiline text field modifier.

NumbersOnlyDefaultValue String False

The default value for numbers only text field modifier.

NumbersOnlyLocaleDisplayName String False

The localized display name for numbers only text field modifier.

NumbersOnlyLocaleDefaultValue String False

The localized default value for numbers only text field modifier.

DropdownValues String False

The values for dropdown modifier.

DropdownLocaleDisplayName String False

The localized display name for dropdown modifier.

DropdownLocaleValues String False

The localized values for dropdown modifier.

RadioButtonsValues String False

The values for radio buttons modifier.

RadioButtonsLocaleDisplayName String False

The localized display name for radio buttons modifier.

RadioButtonsLocaleValues String False

The localized values for radio buttons modifier.

RectangleListValues String False

The values for rectangle list modifier.

RectangleListLocaleDisplayName String False

The localized display name for rectangle list modifier.

RectangleListLocaleValues String False

The localized values for rectangle list modifier.

SwatchValues String False

The values for swatch modifier.

SwatchLocaleDisplayName String False

The localized display name for swatch modifier.

SwatchLocaleValues String False

The localized values for swatch modifier.

PickListValues String False

The values for pick list modifier.

PickListLocaleDisplayName String False

The localized display name for pick list modifier.

PickListLocaleValues String False

The localized values for pick list modifier.

CData Python Connector for BigCommerce

ProductOptions

Returns data from Products table.

Table Specific Information

Select


SELECT * FROM ProductOptions

Insert

To insert a product option, a set of option values are required to be inserted along with it. This can be done by populating a temporary ProductOptionValues table with the desired values for the option you are creating, and later using this table as a value for the LinkedOptionValues pseudo-column during insertion:

INSERT INTO ProductOptionValues#TEMP (Label, SortOrder, IsDefault) VALUES ('Classic', 0, true);
INSERT INTO ProductOptionValues#TEMP (Label, SortOrder, IsDefault) VALUES ('Elegance', 1, false);
INSERT INTO ProductOptionValues#TEMP (Label, SortOrder, IsDefault) VALUES ('Avantgarde', 2, false);
INSERT INTO ProductOptions (ProductId, DisplayName, Type, Name, SortOrder, LinkedOptionValues) VALUES (955, 'ModelSeries', 'dropdown', 'Series', 0, ProductOptionValues#TEMP);

Update


UPDATE ProductOptions SET DisplayName = 'Testing123' WHERE Id = 109

Delete


DELETE FROM ProductOptions WHERE Id = 3

Columns

Name Type ReadOnly Description
Id [KEY] Integer True

The ID of the option.

ProductId [KEY] Integer False

The ID of the product.

DisplayName String False

The name of the option shown on the storefront.

Name String False

The unique option name, auto-generated from the display name, a timestamp, and the product ID.

Type String False

The type of option, which determines how it will display on the storefront. Acceptable values: radio_buttons, rectangles, dropdown, product_list, product_list_with_images, swatch.

SortOrder Integer False

The order in which the option will be displayed on the product page.

ConfigDefaultValue String False

The default value. Shown on a date option as an ISO-8601–formatted string, or on a text option as a string.

ConfigCheckedByDefault Boolean False

Flag for setting the checkbox to be checked by default.

ConfigCheckboxLabel String False

Label displayed for the checkbox option.

ConfigDateLimited Boolean False

Flag to limit the dates allowed to be entered on a date option.

ConfigDateLimitMode String False

The type of limit that is allowed to be entered on a date option.

The allowed values are earliest, range, latest.

ConfigDateEarliestValue String False

The earliest date allowed to be entered on the date option, as an ISO-8601 formatted string.

ConfigDateLatestValue String False

The latest date allowed to be entered on the date option, as an ISO-8601 formatted string.

ConfigFileTypesMode String False

The kind of restriction on the file types that can be uploaded with a file upload option. Values: specific - restricts uploads to particular file types; all - allows all file types.

The allowed values are specific, all.

ConfigFileTypesSupported String False

The type of files allowed to be uploaded if the file_type_option is set to specific.

ConfigFileTypesOther String False

A list of other file types allowed with the file upload option.

ConfigFileMaxSize Integer False

The maximum size for a file that can be used with the file upload option. This will still be limited by the server.

ConfigTextCharactersLimited Boolean False

Flag to validate the length of a text or multi-line text input.

ConfigTextMinLength Integer False

The minimum length allowed for a text or multi-line text option.

ConfigTextMaxLength Integer False

The maximum length allowed for a text or multi line text option.

ConfigTextLinesLimited Boolean False

Flag to validate the maximum number of lines allowed on a multi-line text input.

ConfigTextMaxLines Integer False

The maximum number of lines allowed on a multi-line text input.

ConfigNumberLimited Boolean False

Flag to limit the value of a number option.

ConfigNumberLimitMode String False

The type of limit on values entered for a number option.

The allowed values are lowest, highest, range.

ConfigNumberLowestValue Decimal False

The lowest allowed value for a number option if number_limited is true.

ConfigNumberHighestValue Decimal False

The highest allowed value for a number option if number_limited is true.

ConfigNumberIntegersOnly Boolean False

Flag to limit the input on a number option to whole numbers only.

ConfigProductListAdjustsInventory Boolean False

Flag for automatically adjusting inventory on a product included in the list.

ConfigProductListAdjustsPricing Boolean False

Flag to add the optional product's price to the main product's price.

ConfigProductListShippingCalc String False

How to factor the optional product's weight and package dimensions into the shipping quote.

The allowed values are none, weight, package.

LinkedOptionValues String False

Column for the aggregate table name holding option values.

CData Python Connector for BigCommerce

ProductOptionValues

Returns data from Products table.

Table Specific Information

Select


SELECT * FROM ProductOptionValues 

Insert

To insert a product option value, specify at least the following columns: ProductId, OptionId, Label, SortOrder, along with one of the following: ValueDataImgUrl or ValueDataColors.

Inserting ProductOptionValues with ValueDataImgUrl:

INSERT INTO ProductOptionValues (OptionId,ProductId,Label, SortOrder,ValueDataImgUrl,ValueDataColors) VALUES ('143','77','testingexceptionfornow','2','https://cdn11.bigcommerce.com/s-dr2j9p39ga/product_images/attribute_value_images/357.preview.jpg?t=1696324267','#e35e22')

Inserting ProductOptionValues with ValueDataColors:

INSERT INTO ProductOptionValues (OptionId,ProductId,Label, SortOrder,ValueDataColors) VALUES ('143','77','toasting123','2','#e35e20')

Columns

Name Type ReadOnly Description
Id [KEY] Integer True

The ID of the option value.

OptionId [KEY] Integer False

The ID of the option.

ProductId [KEY] Integer False

The ID of the product.

Label String False

The label of the option value shown on the storefront.

IsDefault Boolean False

Whether this option value is the default for this option.

SortOrder Integer False

The order in which the option value will be displayed on the product page.

ValueDataColors String False

The colors contained in the value data.

ValueDataImgUrl String False

The image url contained in the value data.

CData Python Connector for BigCommerce

ProductPreOrderSettingsLocales

Overrides for the product in a channel locale.



Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • ChannelId supports the = comparison. Required filter.
  • LocaleId supports the = comparison. Required filter.

The rest of the filter is executed client-side within the connector.

For example, the following queries are processed server-side:

SELECT * FROM ProductPreOrderSettingsLocales;
SELECT * FROM ProductPreOrderSettingsLocales WHERE ChannelId = '1' AND LocaleId = 'en';

Update

You can set locale-specific pre-order settings for a product. ProductId, ChannelId, and LocaleId must be specify in WHERE clause. For example:

  UPDATE ProductPreOrderSettingsLocales SET PreOrderSettingsMessage = 'Pre-order available' WHERE ProductId = '111' AND ChannelId = '1' AND LocaleId = 'en';

Delete

You can remove locale-specific pre-order settings overrides.

DELETE FROM ProductPreOrderSettingsLocales WHERE ProductId = '111' AND ChannelId = '1' AND LocaleId = 'fr';

Columns

Name Type ReadOnly Description
ProductId [KEY] String False

The unique identifiers of the products.

ChannelId [KEY] String False

Storefront channel.

LocaleId [KEY] String False

Locale in the channel.

PreOrderSettingsMessage String False

Pre-order message in a channel locale.

CData Python Connector for BigCommerce

ProductReviews

Returns reviews registered for products.

Table Specific Information

Select


SELECT * FROM ProductReviews 

Insert

To insert a product review, specify at least the following columns: Title, Status, ProductId, and DateReviewed.

INSERT INTO ProductReviews (Title, Status, ProductId, DateReviewed) VALUES ('Car Interior121', 'approved', '103', '2019-08-24T14:15:22Z')

Update

You can update the following fields: Title, Status, DateReviewed, Text, Rating, Email, and Name
UPDATE ProductReviews SET Title = 'Testing123' WHERE Id = 7

Delete


DELETE FROM ProductReviews WHERE Id = 16

Columns

Name Type ReadOnly Description
Id [KEY] Integer True

The Id of the review.

ProductId [KEY] Integer False

The Id of the corresponding product.

Title String False

Title of the review.

Text String False

Text content of the review.

Status String False

The status of the product review. Must be one of approved, disapproved, or pending.

Rating Integer False

The rating of the product review. Must be one of 0, 1, 2, 3, 4, or 5.

Email String False

The email of the reviewer. Must be a valid email, or an empty string.

Name String False

The name of the reviewer.

DateCreated Datetime True

The date of creation for the review.

DateModified Datetime True

The last modification date of the review.

DateReviewed Datetime False

Date the product was reviewed.

CData Python Connector for BigCommerce

Products

Returns data from products table.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • Id supports the =, >=, >, <=, and < comparisons.
  • Name supports the = comparison.
  • Sku supports the = comparison.
  • Description supports the = comparison.
  • Price supports the = comparison.
  • IsVisible supports the = comparison.
  • IsFeatured supports the = comparison.
  • InventoryLevel supports the =, >=, >, <=, and < comparisons.
  • BrandId supports the = comparison.
  • DateModified supports the =, >=, >, <=, and < comparisons.
  • Condition supports the = comparison.
  • DateLastImported supports the =, >=, >, <=, and < comparisons.
  • Availability supports the = comparison.
  • Categories supports the = and IN comparisons.

The rest of the filter is executed client-side within the connector. For example, the following queries are processed server-side:

SELECT * FROM Products WHERE Id > 5 AND Id < 10

SELECT * FROM Products WHERE IsVisible = "true"

Insert

To insert a product, specify at least the following columns: Name, Type, Description, Price, Categories, Availability and Weight.

INSERT INTO Products (Name, Type, Description, Price, Categories, Availability, Weight) VALUES ("Plain T-Shirt", "physical", "This is a test description", 29.99, 18, "available", 0.5)

Inserting products with multiple variants using a temp table:

INSERT INTO ProductVariantValues#TEMP (Label, DisplayName, Id) VALUES ('Blue', 'Color', 1)
INSERT INTO ProductVariantValues#TEMP (Label, DisplayName, Id) VALUES ('Yellow', 'Color', 2)

INSERT INTO ProductVariants#TEMP (Sku, LinkedOptionValues, Id) VALUES ('SKU-AB', 'ProductVariantValues#TEMP', 1)
INSERT INTO ProductVariants#TEMP (Sku, LinkedOptionValues, Id) VALUES ('SKU-CD', 'ProductVariantValues#TEMP', 2)

INSERT INTO Products (Name, Type, Weight, Price, ProductVariants) VALUES ('BC-8', 'physical', 60, 5700, 'ProductVariants#TEMP')

Inserting products with multiple variants using aggregates:

INSERT INTO Products (Name, Type, Weight, Price, ProductVariants) VALUES ('BC-95', 'physical', 99, 5800, '[{"Sku": "SKU-MM","option_values": [{"option_display_name": "Song","Id": "1","label": "Mary"}]}, {"Sku": "SKU-DE","option_values": [{"option_display_name": "Song","Id": "2","label": "Jane"}]}]')

Inserting products with one variant:

INSERT INTO ProductVariantValues#TEMP (Label, DisplayName) VALUES ('Blue', 'Color')

INSERT INTO ProductVariants#TEMP (Sku, LinkedOptionValues) VALUES ('SKU-AB', 'ProductVariantValues#TEMP')

INSERT INTO Products (Name, Type, Weight, Price, ProductVariants) VALUES ('BC-8', 'physical', 60, 5700, 'ProductVariants#TEMP')

Bulk Update

To perform a bulk update on products, specify at least the following columns: Description, Id, Name, Sku, and RelatedProducts.

INSERT INTO Update#TEMP (Description, Id, Name, Sku, Categories, RelatedProducts, MetaKeywords, IsCustomized, Url) VALUES ('my_details', '80', 'hello123', 'OTL', '19, 23', '1, 2', '"pqr", "xyz"', false, '/orbit-terrarium-large/'
INSERT INTO Update#TEMP (Description, Id, Name, Sku, Categories, RelatedProducts, MetaKeywords, IsCustomized, Url) VALUES ('my_details1', '86', 'example', 'ABS', '23, 21', '3, 4', '"abc", "an"', false, '/able-brewing-system/'
UPDATE products (Description, Id, Name, Sku, Categories, RelatedProducts, MetaKeywords, IsCustomized, Url) SELECT Description, Id, Name, Sku, Categories, RelatedProducts, MetaKeywords, IsCustomized, Url FROM Update#TEMP

Bulk update using aggregates:

INSERT INTO Update#TEMP (Description, Id, Name, Sku, categories, RelatedProducts, MetaKeywords, CustomUrl) VALUES ('details1', '77', 'name4456', 'SLCTBS', '23, 18', '10', '"abcd", "ab"',
            '{
			  "is_customized": False,
			  "url" : "/fog-linen-chambray-towel-beige-stripe/"
             }')
UPDATE products (Description, Id, Name, Sku, Categories, RelatedProducts, CustomUrl) SELECT Description, Id, Name, Sku, Categories, RelatedProducts, CustomUrl FROM Update#TEMP

Columns

Name Type ReadOnly Description
Id [KEY] Integer True

The Id of the product.

Name String False

The product name.

Type String False

The product type.

Sku String True

User-defined product code/stock keeping unit (SKU)

Description String False

Product description, which can include HTML formatting.

SearchKeywords String False

A comma-separated list of keywords that can be used to locate the product when searching the store.

AvailabilityDescription String False

Availability text, displayed on the checkout page under the product title, telling the customer how long it will normally take to ship this product.

Price Decimal False

The products price.

CostPrice Decimal False

The products cost price.

RetailPrice Decimal False

The products retail cost.

SalePrice Decimal False

Sale price.

MapPrice Decimal False

Map price.

ProductTaxCode String False

Tax Codes.

CalculatedPrice Decimal True

Price as displayed to guests, adjusted for applicable sales and rules.

SortOrder Integer False

Priority to give this product when included in product lists on category pages and in search results.

IsVisible Boolean False

Flag to determine whether or not the product should be displayed to customers browsing.

IsFeatured Boolean False

Flag to determine whether the product should be included in the featured products panel for shoppers viewing the store.

RelatedProducts String False

Defaults to -1, which causes the store to automatically generate a list of related products.

InventoryLevel Integer False

Current inventory level of the product.

InventoryWarningLevel Integer False

Inventory Warning level for the product.

Warranty String False

Warranty information displayed on the product page.

Weight Decimal False

Weight of the product, which can be used when calculating shipping costs.

Width Decimal False

Width of the product, which can be used when calculating shipping costs.

Height Decimal False

Height of the product, which can be used when calculating shipping costs.

Depth Decimal False

Depth of the product, which can be used when calculating shipping costs.

FixedCostShippingPrice Decimal False

A fixed shipping cost for the product.

IsFreeShipping Boolean False

Flag used to indicate whether or not the product has free shipping.

InventoryTracking String False

The type of inventory tracking for the product.

RatingTotal Integer False

The total rating for the product.

RatingCount Integer False

The total number of ratings the product has had.

ReviewsRatingSum Integer True

The total (cumulative) rating for the product.

ReviewsCount Integer True

The number of times the product has been rated.

TotalSold Integer False

Total quantity of this product sold through transactions.

DateCreated Datetime False

The date of which the product was created.

BrandId Integer True

The products brand

ViewCount Integer False

The number of times the product has been viewed.

PageTitle String False

Custom title for the products page.

MetaKeywords String False

Custom meta keywords for the product page.

MetaDescription String False

Custom meta description for the product page.

LayoutFile String False

The layout template file used to render this product category.

IsPriceHidden Boolean False

The default false value indicates that this products price should be shown on the product page.

PriceHiddenLabel String False

By default, an empty string. If is_price_hidden is true, the value of price_hidden_label will be displayed instead of the price.

Categories String False

An array of IDs for the categories this product belongs to. When updating a product, if an array of categories is supplied, then all product categories will be overwritten.

DateModified Datetime False

The date that the product was last modified.

Condition String False

The products condition.

The allowed values are new, used, refurbished.

IsConditionShown Boolean False

Flag used to determine whether the products condition will be shown to the customer on the product page.

PreorderReleaseDate Datetime False

Pre-order release date.

IsPreorderOnly Boolean False

If set to false, the product will not change its availability from preorder to available on the release date.

PreorderMessage String False

Custom expected-date message to display on the product page.

OrderQuantityMinimum Integer False

The minimum quantity an order must contain in order to purchase this product.

OrderQuantityMaximum Integer False

The maximum quantity an order can contain when purchasing the product.

OpenGraphType String False

Type of product.

The allowed values are product, album, book, drink, food, game, movie, song, tv_show.

OpenGraphTitle String False

Title of the product. If not specified, the products name will be used instead.

OpenGraphDescription String False

Description to use for the product.

OpenGraphUseMetaDescription Boolean False

Flag to determine if product description or open graph description is used.

OpenGraphUseProductName Boolean False

Flag to determine if product name or open graph name is used.

OpenGraphUseImage Boolean False

Flag to determine if product image or open graph image is used.

IsOpenGraphThumbnail Boolean False

If set to true, the product thumbnail image will be used as the open graph image.

UPC String False

The product UPC code, which is used in feeds for shopping comparison sites.

GTIN String False

Global Trade Item Number.

OptionSetId Integer True

The ID of the option set applied to the product.

TaxClassId Integer True

The ID of the tax class applied to the product.

OptionSetDisplay String True

The position on the product page where options from the option set will be displayed.

BinPickingNumber String False

The BIN picking number for the product.

CustomUrl String False

Custom URL (if set) overriding the structure dictated in the stores settings.

CustomFields String False

200 maximum custom fields per product. 255 maximum characters per custom field.

ManufacturerPartNumber String False

Manufacturer Part Number.

IsCustomized Boolean False

Returns true if the URL has been changed from its default state (the auto-assigned URL that BigCommerce provides.

Url String False

Product URL on the storefront.

Availability String False

Availability of the product.

PrimaryImageId Integer True

Id of the primary image.

PrimaryImageProductId Integer True

ProductId of the primary image.

PrimaryImageIsThumbnail Boolean True

Primary image Is Thumbnail or not.

PrimaryImageSortOrder String True

Sort Order of the primary image.

PrimaryImageDescription String True

Description of the primary image.

PrimaryImageImageFile String True

Image file of the primary image.

PrimaryImageUrlZoom String True

Zoom Url of the primary image.

PrimaryImageStandardUrl String True

Standard url of the primary image.

PrimaryImageUrlThumbnail String True

Thumbnail url of the primary image.

PrimaryImageUrlTiny String True

Tiny url of the primary image.

PrimaryImageDateModified Datetime True

Modified Date of the primary image.

GiftWrappingOptionsType String True

Type of gift-wrapping options.

GiftWrappingOptionsList String True

Type of gift-wrapping option IDs.

BaseVariantId String True

Base Variant Id.

VideoURL String True

Returns the URL of the first video hosted on the site. To retrieve all video URLs, refer to the ProductVideos view.

Pseudo-Columns

Pseudo column fields are used to enable the user to INSERT Fields that are non-readable but required during creation of new records.

Name Type Description
ProductVariants String

Variants of the Products

CData Python Connector for BigCommerce

ProductSeoInformationLocales

Overrides for the product in a channel locale.



Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • ChannelId supports the = comparison. Required filter.
  • LocaleId supports the = comparison. Required filter.

The rest of the filter is executed client-side within the connector.

For example, the following queries are processed server-side:

SELECT * FROM ProductSeoInformationLocales;
SELECT * FROM ProductSeoInformationLocales WHERE ChannelId = '1' AND LocaleId = 'en';

UPDATE

You can set locale-specific SEO information for a product. ProductId, ChannelId, and LocaleId must specify in WHERE clause. For example:

UPDATE ProductSeoInformationLocales SET SeoInformationPageTitle = 'Titre de la page', SeoInformationMetaDescription = 'Description meta' WHERE ProductId = '111' AND ChannelId = '1' AND LocaleId = 'fr';

Columns

Name Type ReadOnly Description
ProductId [KEY] String False

The unique identifiers of the products.

ChannelId [KEY] String False

Storefront channel.

LocaleId [KEY] String False

Locale in the channel.

SeoInformationMetaDescription String False

Override for a product meta description in a channel locale.

SeoInformationPageTitle String False

Override for a product page title in a channel locale.

CData Python Connector for BigCommerce

ProductStoreFrontLocales

Overrides for the product in a channel locale.



Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • ChannelId supports the = comparison. Required filter.
  • LocaleId supports the = comparison. Required filter.

The rest of the filter is executed client-side within the connector.

For example, the following queries are processed server-side:

SELECT * FROM ProductStoreFrontLocales;
SELECT * FROM ProductStoreFrontLocales WHERE ChannelId = '1' AND LocaleId = 'en';

Update

You can set locale-specific storefront details for a product. You must specify ProductId, ChannelId and LocaleId in the WHERE clause. For example:

UPDATE ProductStoreFrontLocales SET StorefrontDetailsWarranty = 'Garantie 2 ans', StorefrontDetailsAvailabilityDescription = 'Disponible maintenant', StorefrontDetailsSearchKeywords = 'mots cles' WHERE ProductId = '111' AND ChannelId = '1' AND LocaleId = 'fr';

Columns

Name Type ReadOnly Description
ProductId [KEY] String False

The unique identifiers of the products.

ChannelId [KEY] String False

Storefront channel.

LocaleId [KEY] String False

Locale in the channel.

StorefrontDetailsWarranty String False

Product warranty.

StorefrontDetailsAvailabilityDescription String False

Description about product availability.

StorefrontDetailsSearchKeywords String False

Product search keywords.

CData Python Connector for BigCommerce

ProductUrlLocales

Overrides for the product in a channel locale.



Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • ChannelId supports the = comparison. Required filter.
  • LocaleId supports the = comparison. Required filter.

The rest of the filter is executed client-side within the connector.

For example, the following queries are processed server-side:

SELECT * FROM ProductUrlLocales;
SELECT * FROM ProductUrlLocales WHERE ChannelId = '1' AND LocaleId = 'en';

Update

You can set locale-specific URL path for a product. You must specify ProductId, ChannelId and LocaleId in the WHERE clause. For example:

UPDATE ProductUrlLocales SET UrlPathPath = '/produit-exemple-fr/' WHERE ProductId = '111' AND ChannelId = '1' AND LocaleId = 'fr';

Delete

You can remove locale-specific URL path overrides.

DELETE FROM ProductUrlLocales WHERE ProductId = '111' AND ChannelId = '1' AND LocaleId = 'fr';

Columns

Name Type ReadOnly Description
ProductId [KEY] String False

The unique identifiers of the products.

ChannelId [KEY] String False

Storefront channel.

LocaleId [KEY] String False

Locale in the channel.

UrlPathPath String False

Path override value in a channel locale.

CData Python Connector for BigCommerce

ProductVariants

Returns data from Products table.

Table Specific Information

Select


SELECT * FROM ProductVariants

Insert

To insert a product variant, a set of option values must also be inserted. This can be done by populating a temporary ProductVariantValues table with the desired values for the option you are creating, and later using this table as a value for the LinkedOptionValues pseudo-column during insertion:

INSERT INTO ProductVariantValues#TEMP (Id, OptionId, Label, DisplayName) VALUES (181, 118, 'Elegance', 'Series');
INSERT INTO ProductVariants (ProductId, LinkedOptionValues, SKU) VALUES (955, ProductVariantValues#TEMP, 'DSFMGG');

Update


UPDATE ProductVariants SET Weight = '23' WHERE Id = 64

Delete


DELETE FROM ProductVariants WHERE Id = 3

Columns

Name Type ReadOnly Description
Id [KEY] Integer True

The ID of the product variant.

ProductId [KEY] Integer False

The ID of the product.

SKU String False

User defined product code/stock keeping unit (SKU).

SkuID String False

The ID for User defined product code/stock keeping unit (SKU).

Price Decimal False

The price of the product variant. The price should include or exclude tax, based on the store settings.

CalculatedPrice Decimal False

The variant’s calculated price on the storefront.

SalePrice Decimal False

The variant’s sale price on the storefront.

RetailPrice Decimal False

The variant’s retail price on the storefront.

MapPrice Integer False

The Minimum Advertised Price.

Weight Decimal False

This variant’s base weight on the storefront. If this value is null, the product’s default weight (set in the Product resource’s weight field) will be used as the base weight.

CalculatedWeight Decimal False

The variant’s calculated weight on the storefront.

Width Decimal False

Width of the variant, which can be used when calculating shipping costs.

Height Decimal False

The Height of the variant, which can be used when calculating shipping costs.

Depth Decimal False

The Depth of the variant, which can be used when calculating shipping costs.

IsFreeShipping Boolean False

The Flag used to indicate whether the variant has free shipping. If true, the shipping cost for the variant will be zero.

FixedCostShippingPrice Decimal False

The fixed shipping cost for the variant. If defined, this value will be used during checkout instead of normal shipping-cost calculation.

PurchasingDisabled Boolean False

Accepts AvaTax System Tax Codes, which identify products and services that fall into special sales-tax categories.

PurchasingDisabledMessage String False

Accepts AvaTax System Tax Codes, which identify products and services that fall into special sales-tax categories.

ImageUrl String False

The Image url for the variant.

CostPrice Decimal False

The cost price of the variant.

Upc String False

The UPC code used in feeds for shopping comparison sites and external channel integrations.

Mpn String False

The Manufacturer Part Number (MPN) for the variant.

Gtin String False

The Global Trade Item Number.

InventoryLevel Integer False

The Inventory level for the variant, which is used when the product’s inventory_tracking is set to variant.

InventoryWarningLevel Integer False

The Inventory warning level for the product

BinPickingNumber String False

Identifies where in a warehouse the variant is located.

LinkedOptionValues String False

The Option Value Id.

CData Python Connector for BigCommerce

SharedProductModifierOptionsLocale

List of shared product modifiers with locale overrides.



Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • ChannelId supports the = comparison. Required filter.
  • LocaleId supports the = comparison. Required filter.

The rest of the filter is executed client-side within the connector.

For example, the following queries are processed server-side:

SELECT * FROM SharedProductModifierOptionsLocale
SELECT * FROM SharedProductModifierOptionsLocale WHERE ChannelId = '1' AND LocaleId = 'en'

Update

You can set locale-specific information for shared product modifiers. Each modifier type (checkbox, textField, dropdown, etc.) has specific columns for display name and values. You must specify shared , ChannelId and LocaleId in the WHERE clause. For example:

UPDATE SharedProductModifierOptionsLocale SET RectangleListLocaleDisplayName = 'Option Name Localized', RectangleListLocaleValues = '[{\"valueId\": \"bc/store/sharedProductModifierValue/107\",\"label\": \"grande\"},{ \"valueId\": \"bc/store/sharedProductModifierValue/108\", \"label\": \"petite\" }]' WHERE SharedProductModifierId = '2' AND ChannelId = '1' AND LocaleId = 'en'

This table returns shared product modifiers with locale-specific overrides including display names, field values, and option values for various modifier types.

Columns

Name Type ReadOnly Description
SharedProductModifierId [KEY] String False

The ID of the shared product modifier.

ChannelId [KEY] String False

Storefront channel ID.

LocaleId [KEY] String False

Locale code in the storefront channel (e.g., en, fr).

StoreId String False

The ID of the store.

DisplayName String False

The display name of the shared modifier.

IsRequired Bool False

Whether the shared modifier is required.

CheckboxLocaleDisplayName String False

The localized display name for checkbox shared modifier.

CheckboxLocaleFieldValue String False

The localized field value for checkbox shared modifier.

DateFieldLocaleDisplayName String False

The localized display name for date field shared modifier.

FileUploadLocaleDisplayName String False

The localized display name for file upload shared modifier.

TextFieldLocaleDisplayName String False

The localized display name for text field shared modifier.

TextFieldLocaleDefaultValue String False

The localized default value for text field shared modifier.

MultilineTextLocaleDisplayName String False

The localized display name for multiline text field shared modifier.

MultilineTextLocaleDefaultValue String False

The localized default value for multiline text field shared modifier.

NumbersOnlyLocaleDisplayName String False

The localized display name for numbers only text field shared modifier.

NumbersOnlyLocaleDefaultValue String False

The localized default value for numbers only text field shared modifier.

DropdownLocaleDisplayName String False

The localized display name for dropdown shared modifier.

DropdownLocaleValues String False

The localized values for dropdown shared modifier.

RadioButtonsLocaleDisplayName String False

The localized display name for radio buttons shared modifier.

RadioButtonsLocaleValues String False

The localized values for radio buttons shared modifier.

RectangleListLocaleDisplayName String False

The localized display name for rectangle list shared modifier.

RectangleListLocaleValues String False

The localized values for rectangle list shared modifier.

SwatchLocaleDisplayName String False

The localized display name for swatch shared modifier.

SwatchLocaleValues String False

The localized values for swatch shared modifier.

PickListLocaleDisplayName String False

The localized display name for pick list shared modifier.

PickListLocaleValues String False

The localized values for pick list shared modifier.

CData Python Connector for BigCommerce

ShippingMethods

Lists all shipping methods.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • Id supports the = comparison.
  • ZoneId supports the = comparison.

The rest of the filter is executed client-side within the connector.

For example, the following query is processed server-side:

SELECT * FROM ShippingMethods

SELECT * FROM ShippingMethods WHERE ZoneId = 1

SELECT * FROM ShippingMethods WHERE ZoneId = 1 and Id = 1

Insert

To insert a shipping method, Name, Type, Settings, and ZoneId must also be inserted. Settings must be passed as a JSON object.

INSERT INTO ShippingMethods (Name, Type, Enabled, ZoneId, HandlingFeesFixedSurcharge, Settings) VALUES ('Flat Rate 2', 'perorder', true, 1, 0, '{ "rate" : 7 }')

Update

To update a ShippingMethod, Name, Type, Settings, ZoneId and Id are required.
UPDATE ShippingMethods SET Name = 'Flat Rate 1', Type = 'perorder', Settings = '{ "rate" : 7 }', HandlingFeesPercentageSurcharge = 1 WHERE Id = 9 and ZoneId = 1

Delete

To delete a shipping method, Id and ZoneId are required.
DELETE FROM ShippingMethods WHERE Id = 9 and ZoneId = 1

Columns

Name Type ReadOnly Description
Id [KEY] Integer True

Shipping Method Id.

Name String False

Shipping Method name.

Type String False

Shipping Method type.

Enabled Boolean False

Minimum subtotal of the free shipping.

HandlingFeesPercentageSurcharge Decimal False

Percentage surcharge of the handling fee.

HandlingFeesFixedSurcharge Decimal False

Fixed surcharge of the handling fee.

IsFallback Boolean True

Whether or not this shipping zone is the fallback if all others are not valid for the order.

Settings String False

Shipping method settings.

ZoneId Integer False

The Shipping Zone Id

CData Python Connector for BigCommerce

ShippingZones

Lists all shipping zones.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the Id column, which supports the = comparison.

The rest of the filter is executed client-side within the connector.

For example, the following query is processed server-side:

SELECT * FROM ShippingZones WHERE Id = 1 

Insert

To insert a shipping zone, a set of Locations must also be inserted. This can be done by populating a temporary ShippingZoneLocations table with the desired values for the option you are creating, and later using this table as a value for the Locations column during insertion:

INSERT INTO ShippingZoneLocations#Temp (CountryIso2, Zip) values ('US', '11103')
INSERT INTO ShippingZones (Name, Type, locations) VALUES ('United States', 'zip', 'ShippingZoneLocations#Temp')

Update


UPDATE ShippingZones SET Enabled=true WHERE Id = 7

Delete


DELETE FROM ShippingZones WHERE Id = 7

Columns

Name Type ReadOnly Description
Id [KEY] Integer True

Zone Id.

Name String False

Zone name.

Type String False

Zone type.

The allowed values are zip, country, state, global.

FreeShippingEnabled Boolean False

Indicator if free shipping is enabled.

FreeShippingMinimumSubTotal Decimal False

Minimum subtotal of the free shipping.

FreeShippingExcludeFixedShippingProducts Boolean False

Indicator whether or not to exclude fixed shipping on products.

HandlingFeesDisplaySeparately Boolean False

Indicator whether or not to display the handling fees separately.

HandlingFeesPercentageSurcharge Decimal False

Percentage surcharge of the handling fee.

HandlingFeesFixedSurcharge Decimal False

Fixed surcharge of the handling fee.

Enabled Boolean False

Whether this shipping zone is enabled.

Locations String False

Array of zone locations.

CData Python Connector for BigCommerce

Views

Views are similar to tables in the way that data is represented; however, views are read-only.

Queries can be executed against a view as if it were a normal table.

CData Python Connector for BigCommerce Views

Name Description
Blogposts Returns all blog posts.
BlogTags Returns a list of Blog Tags.
CustomerGroups Returns a list of customer groups.
DownloadConsignments Returns consignments and their corresponding downloads.
EmailConsignments Returns consignments and their corresponding emails.
GiftCertificates Lists all gift certificates.
OrderCoupons Lists all order coupons.
OrderItemOptionValues Returns data from OrderItems table.
OrderMessages Gets the messages associated with an order.
OrderRefunds Returns a list of refunds.
OrderRefundsItems List of Items refunded.
OrderRefundsPayments Refund payments made to payment providers.
OrderShippingAddresses Returns shipping addresses and their corresponding orders.
OrderStatuses Returns order statuses.
OrderTaxes Gets all order taxes related to an order.
Pages Lists all pages.
PaymentMethods Lists all payment methods.
PickupConsignments Returns consignments and their corresponding pickups.
PriceListAssignments Returns an array of Price List Assignments matching a particular Customer Group and Price List and Channel.
ProductBulkPricingRules Returns bulk pricing rules applied to a product.
ProductCustomFields Lists all tax classes.
ProductRules Returns rules that modify the properties of a product, such as weight, price, and product image.
ProductVariantValues Returns data from Products table.
ProductVariantValuesForLocale List of product option values with locale overrides.
ProductVideos Returns Embedded videos displayed on product listings.
Redirects Lists all redirect URLs.
SharedVariantOptionsLocale List of shared product options with locale overrides.
ShipmentItems Returns data from Items within a shipment.
ShippingConsignmentQuotes Gets all shipping quotes persisted on an order for a shipping consignment.
ShippingConsignments Returns consignments and their corresponding shipping orders.
ShippingZoneLocations Lists all shipping zone locations
Stores Lists all Stores.
TaxClasses Lists all tax classes.
Transactions Lists all transactions.

CData Python Connector for BigCommerce

Blogposts

Returns all blog posts.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • Id supports the = comparison.
  • Url supports the = comparison.
  • IsPublished supports the = comparison.

The rest of the filter is executed client-side within the connector. For example, the following queries are processed server-side:

SELECT * FROM Blogposts WHERE Id = "1234" 

SELECT * FROM Blogposts WHERE IsPublished = "true"

Columns

Name Type Description
Id [KEY] Integer Id of the blogpost
Title String Title of this blog post.
URL String URL for the public blog post.
PreviewURL String URL to preview the blog post.
Body String Text body of the blog post.
Summary String Summary of the blog post.
IsPublished Boolean Whether the blog post is published.
PublishedDate Datetime Date when the blogpost was published.
PublishedTimezone String Timezone when the blogpost was published.
PublishedTimezoneType Integer Type of the timezone.
PublishedDateISO String Published date in ISO8601 format.
MetaDescription String Description text for this blog posts meta element.
MetaKeywords String Keywords for this blog posts meta element.
Author String Name of the blog posts author.
ThumbnailPath String Local path to a thumbnail image within the product_images folder to accompany the blog post.

CData Python Connector for BigCommerce

BlogTags

Returns a list of Blog Tags.

Columns

Name Type Description
BlogIds [KEY] String Id of the blogpost
Tag [KEY] String Tag which belongs to the blog.

CData Python Connector for BigCommerce

CustomerGroups

Returns a list of customer groups.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • Id supports the = comparison.
  • Name supports the = and LIKE comparisons.
  • IsDefault supports the = comparison.
  • IsGroupForGuests supports the = comparison.
  • DateModified supports the =, <=, >=, <, and > comparisons.

The rest of the filter is executed client-side within the connector. For example, the following queries are processed server-side:

SELECT * FROM CustomerGroups WHERE Id = 1 

SELECT * FROM CustomerGroups WHERE IsDefault = "true"

SELECT * FROM CustomerGroups WHERE IsGroupForGuests = "true"

SELECT * FROM CustomerGroups WHERE DateModified = '2024-12-27 01:20:31.0'

SELECT * FROM CustomerGroups WHERE DateModified <= '2024-12-27 01:20:31.0'

Columns

Name Type Description
Id [KEY] Integer Id of the customer group.
Name String Name of the group.
IsDefault Boolean Determines whether new customers are assigned to this group by default.
CategoryAccessType String Type of the category access. Possible values are: all, specific, none.
CategoryAccessCategories String An array of category Ids.
IsGroupForGuests Boolean Describes whether the group is for guests. There can only be one customer group for guests at a time.
DateCreated Datetime Date on which the customer group was created.
DateModified Datetime Date on which the customer group was last modified.
DiscountRules String A collection of discount rules that are automatically applied to customers who are members of the group.

CData Python Connector for BigCommerce

DownloadConsignments

Returns consignments and their corresponding downloads.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the OrderId column, which supports the = comparison.

For example, the following queries are processed server-side:

SELECT * FROM DownloadConsignments WHERE OrderId = 123 

Columns

Name Type Description
OrderId Integer Identifier for the BigCommerce Order with which this transaction is associated.
RecipientEmail String The recipient email of the digital consignment.
DownloadLineItemResources String URL where you can use a GET request to get the downloads line items for the order consignment.
DownloadLineItemUrl String Path where you can use a GET request to get the downloads line items for the order consignment.

CData Python Connector for BigCommerce

EmailConsignments

Returns consignments and their corresponding emails.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the OrderId column, which supports the = comparison.

For example, the following queries are processed server-side:

SELECT * FROM EmailConsignments WHERE OrderId = 123 

Columns

Name Type Description
OrderId Integer Identifier for the BigCommerce Order with which this transaction is associated.
RecipientEmail String The recipient email of the gift certificate.
GiftCertificatesLineItemResources String URL where you can use a GET request to get the gift certificate line items for the order consignment.
GiftCertificatesLineItemUrl String Path where you can use a GET request to get the gift certificate line items for the order consignment.

CData Python Connector for BigCommerce

GiftCertificates

Lists all gift certificates.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • Id supports the =, >=, >, <=, and < comparisons.
  • Code supports the = comparison.
  • ToName supports the = comparison.
  • ToEmail supports the = comparison.
  • OrderId supports the = comparison.
  • FromEmail supports the = comparison.
  • FromName supports the = comparison.

The rest of the filter is executed client-side within the connector.

For example, the following queries are processed server-side:

SELECT * FROM GiftCertificates WHERE Id = 1 

SELECT * FROM GiftCertificates WHERE IsDefault = "true"

SELECT * FROM GiftCertificates WHERE IsGroupForGuests = "true"

Columns

Name Type Description
Id [KEY] Integer The Id of the gift certificate.
Code String A unique string that the customer can input to redeem the gift certificate.
Amount Decimal Value of the gift certificate.
Status String Status of the gift certificate. Possible values are: active, pending, disabled, or expired.
Balance Decimal Remaining value of the gift certificate.
ToName String Name of the recipient.
ToEmail String Email of the recipient.
OrderId Integer The Id of the order.
Template String The email theme to use in the message sent to the recipient. Possible values are: birthday.html, girl.html, boy.html, celebration.html, christmas.html, or general.html.
Message String Text that is sent to the recipient, such as Congratulations.
FromName String Name of the customer who purchased the gift certificate.
FromEmail String Email of the customer who purchased the gift certificate.
CustomerId Integer The Id of the customer placing the order.
ExpiryDate Datetime Date on which the gift certificate is set to expire.
PurchaseDate Datetime Date the gift certificate was purchased.
CurrencyCode String The currency code.

CData Python Connector for BigCommerce

OrderCoupons

Lists all order coupons.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the OrderId column, which supports the = comparison.

The rest of the filter is executed client-side within the connector.

For example, the following queries are processed server-side:

SELECT * FROM OrderCoupons WHERE OrderId = 2;

Columns

Name Type Description
Id [KEY] Integer Numeric ID of this product within this order.
OrderId Integer Numeric ID of the associated order.
CouponId Integer The coupon id.
Code String The code of the coupon.
Amount Decimal The amount of the coupon.
Type Integer The type of the coupon.
Discount Decimal The discount of the coupon.

CData Python Connector for BigCommerce

OrderItemOptionValues

Returns data from OrderItems table.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • OrderId supports the = comparison.
  • OrderItemId supports the = comparison.

The rest of the filter is executed client-side within the connector.

For example, the following queries are processed server-side:

SELECT * FROM [OrderItemOptionValues] WHERE OrderItemId = 2522;
SELECT * FROM [OrderItemOptionValues] WHERE OrderId = 100 and OrderItemId = 27;

Columns

Name Type Description
Id [KEY] Integer The numerical ID of the option value within the group of ordered items.
OptionId Integer The ID of the option from Product Options table.
OrderItemId [KEY] Integer The ID of the product.
OrderItemOptionId Integer The numerical ID of the option within the group of ordered items.
DisplayName String The name of the option shown on the storefront.
DisplayValue String The value of the option shown on the storefront.
Value String The actual value of the option.
Name String The unique option name, auto-generated from the display name, a timestamp, and the product ID.
Type String The type of option, which determines how it will display on the storefront. Acceptable values: Checkbox, Date field, File Upload, Multi-line text field, Multiple choice, Product Pick List, Swatch, Text field
DisplayStyle String The specific style which the order will be displayed as.
OrderId Integer Numeric ID of the associated order.
OrderProductId Integer Order product Id
DisplayNameCustomer String The product option name that is shown to customer in storefront.
DisplayNameMerchant String The product option name that is shown to merchant in Control Panel.
DisplayValueCustomer String The product option value that is shown to customer in storefront.
DisplayValueMerchant String The product option value that is shown to merchant in Control Panel.

CData Python Connector for BigCommerce

OrderMessages

Gets the messages associated with an order.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • Id supports the <=, <, >=, and > comparisons.
  • OrderId supports the = comparison.
  • CustomerId supports the = comparison.
  • Status supports the = comparison.
  • IsFlagged supports the = comparison.
  • DateCreated supports the =, <=, <, >=, and > comparisons.

The rest of the filter is executed client-side within the connector.

For example, the following queries are processed server-side:

SELECT * FROM OrderMessages WHERE OrderId = 2

SELECT * FROM OrderMessages WHERE IsFlagged = "true"

SELECT * FROM OrderMessages WHERE DateCreated >= "2019-01-01" AND DateCreated <= "2020-01-01"

Columns

Name Type Description
Id [KEY] Integer Numeric ID of this product within this order.
OrderId Integer Numeric ID of the associated order.
StaffId Integer The staff id.
CustomerId Integer The customer id.
Type String Type of the message.
Subject String Subject of the message.
Message String Message content.
Status String Status of the message.
IsFlagged Boolean Indicator if the message is flagged.
DateCreated Datetime Datetime when the message was first created.

CData Python Connector for BigCommerce

OrderRefunds

Returns a list of refunds.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • Id supports the = and IN comparisons.
  • OrderId supports the = and IN comparisons.
  • Created supports the =, >, <, >=, and <= comparisons.

The rest of the filter is executed client-side within the connector. For example, the following queries are processed server-side:

SELECT * FROM OrderRefunds WHERE Id = 1 

SELECT * FROM OrderRefunds WHERE OrderId = 2

Columns

Name Type Description
Id [KEY] Integer Refund resource ID.
Created [KEY] Datetime Timestamp of when this refund was created.
OrderId Integer Reference to order id.
Reason String Reason for refund.
TotalAmount Decimal A non-negative 2 decimal place rounded value that represents the amount that can be charged/refunded via payment providers.
TotalTax Decimal Total tax amount refunded back to the shopper. Note: order_level_amount does not affect tax liability.
UserId Integer Reference to the user's id who create this refund.
UsesMerchantOverrideValues Boolean Whether refund amount and tax are provided explicitly by merchant override

CData Python Connector for BigCommerce

OrderRefundsItems

List of Items refunded.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • OrderId supports the = and IN comparisons.
  • OrderRefundsId supports the = and IN comparisons.

The rest of the filter is executed client-side within the connector.

For example, the following queries are processed server-side:

SELECT * FROM OrderRefundsItems WHERE OrderRefundId = 2

SELECT * FROM OrderRefundsItems WHERE OrderId = 2

Columns

Name Type Description
ItemId [KEY] Integer order_product.id corresponding to the item_types of PRODUCT, GIFT_WRAPPING. order_address.id corresponding to the item_types of SHIPPING, HANDLING. order.id corresponding to the item_type of ORDER.
OrderRefundId [KEY] Integer The ID of the order refund.
OrderId Integer Reference to order id.
ItemType String Type of item that was refunded. Possible values are: PRODUCT, GIFT_WRAPPING, SHIPPING, HANDLING, ORDER, FEE
Quantity Integer Quantity of item refunded. Note: this will only be populated for item_type PRODUCT
Reason String Reason for refunding an item.
RequestedAmount Decimal A non-negative 2 decimal place rounded value that represents the amount that can be charged/refunded via payment providers..

CData Python Connector for BigCommerce

OrderRefundsPayments

Refund payments made to payment providers.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • OrderId supports the = and IN comparisons.
  • OrderRefundsId supports the = and IN comparisons.

The rest of the filter is executed client-side within the connector.

For example, the following queries are processed server-side:

SELECT * FROM OrderRefundsItems WHERE OrderRefundId = 2

SELECT * FROM OrderRefundsPayments WHERE OrderId = 2

Columns

Name Type Description
Id [KEY] Integer The ID of the refund payment.
OrderRefundId Integer The ID of the order refund.
OrderId Integer Reference to order id.
ProviderId String Reference to payment provider.
Amount Decimal A non-negative 2 decimal place rounded value that represents the amount that can be charged/refunded via payment providers.
Offline Boolean Indicate whether payment was offline.
IsDeclined Boolean Indicate if this payment has been declined by payment provider.
DeclinedMessage String Message indicate why payment was declined.

CData Python Connector for BigCommerce

OrderShippingAddresses

Returns shipping addresses and their corresponding orders.

Columns

Name Type Description
Id [KEY] Integer ID of this shipping address.
OrderId Integer ID of the order.
FirstName String Addressee first name.
LastName String Addressee last name.
Company String Addressee company.
Street1 String Street address (first line).
Street2 String Street address (second line).
City String Addressee city.
Zip String ZIP or postal code.
Country String Addressee's country.
State String The name of the state or province. Should be spelled out in full, for example, California.
Email String Recipient's email address.
Phone String Recipient's telephone number.
BaseCost Decimal The base value of the order's items.
BaseHandlingCost Decimal The base handling charge.
CostExTax Decimal The value of the order's items, excluding tax.
CostIncTax Decimal The value of the order's items, including tax.
CostTax Decimal The tax amount on the order.
CostTaxClassId String The ID of the tax class applied to the product.
CountryIso2 String 2-letter ISO Alpha-2 code for the country.
HandlingCostExTax Decimal The handling charge, excluding tax.
HandlingCostIncTax Decimal The handling charge, including tax.
HandlingCostTax Decimal The handling charge.
HandlingCostTaxClassId String A read-only value. Do not attempt to set or modify this value in a POST or PUT operation. (NOTE: Value ignored if automatic tax is enabled on the store.)
ItemsShipped Integer The number of items that have been shipped.
ItemsTotal Integer The total number of items in the order.
ShippingMethod String Text code identifying the BigCommerce shipping module selected by the customer.
ShippingZoneId Integer Numeric ID of the shipping zone.
ShippingZoneName String Name of the shipping zone.

CData Python Connector for BigCommerce

OrderStatuses

Returns order statuses.

Columns

Name Type Description
Id [KEY] Integer The Id of the type of order status
Name String Name of the type of order status.
Systemlabel String System name of the type of order status.
CustomLabel String Custom order status label given in the Control Panel.
SystemDescription String System description of the order status.

CData Python Connector for BigCommerce

OrderTaxes

Gets all order taxes related to an order.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • OrderId supports the = comparison.

The rest of the filter is executed client-side within the connector.

For example, the following queries are processed server-side:

SELECT * FROM OrderTaxes WHERE OrderId = 2

Columns

Name Type Description
Id [KEY] Integer Numeric Id of this product within this order.
OrderId Integer Numeric Id of the associated order.
OrderAddressId Integer The unique numeric identifier of the order address object associated with the order.
TaxRateId Integer The unique numeric identifier of the tax rate.
TaxClassId Integer The unique numeric identifier of the tax class object.
Name String The name of the tax class object.
Class String The name of the type of tax that was applied.
Rate Decimal The tax rate.
Priority Decimal The order in which the tax is applied.
PriorityAmount Decimal The amount of tax calculated on the order.
LineAmount Decimal The line amount.
OrderProductId String If the line_item_type is 'item' or 'handling' then this field is the order product Id. Otherwise, the field returns as null.
LineItemType String Type of tax on item. Possible values are: item, shipping, handling, or gift-wrapping.

CData Python Connector for BigCommerce

Pages

Lists all pages.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the Id column, which supports the = comparison.

The rest of the filter is executed client-side within the connector.

For example, the following query is processed server-side:

SELECT * FROM Pages WHERE Id = 1 

Columns

Name Type Description
Id [KEY] Integer Id of the page.
ChannelId Integer Channel Id of the page.
Name String Name of the page.
Email String Email of the page.
MetaTitle String Title of the page.
Body String Body of the page.
IsVisible Boolean Indicator if page is visible.
ParentId Integer Parent id of the page.
SortOrder Integer Sort order of the page.
MetaKeywords String Keywords of the page.
Type String Type of the page.
MetaDescription String Description of the page.
IsHomepage Boolean Indicator if the page is homepage.
IsCustomersOnly Boolean Indicator if the page is customer only.
SearchKeywords String Search keywords of the page.
Url String Url of the page.

CData Python Connector for BigCommerce

PaymentMethods

Lists all payment methods.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • OrderId supports the = comparison.
  • CheckoutId supports the = comparison.
The rest of the filter is executed client-side within the connector.

For example, the following queries are processed server-side:

SELECT * FROM PaymentMethods WHERE OrderId = 2;
SELECT * FROM PaymentMethods WHERE CheckoutId = 2;

The following query retrieves results for the OrderIds that have a status = Incomplete.

SELECT * FROM PaymentMethods;

Columns

Name Type Description
Id [KEY] String Identifier for this payment method
Name String Name of this payment method
TestMode Boolean Whether this payment method is on test mode
StoredInstruments String Stored Instruments of payment method
SupportedInstruments String Supported Instruments of payment method
Type String Type to classify this payment method
OrderId String The ID of the subject order.
CheckoutId String The ID of the subject checkout; identical to the cart ID.
RowId [KEY] String A unique identifier for payment methods, generated by combining the OrderId (or CheckoutId) with the Id. When OrderId is present, the format is o_{OrderId}_{id}; otherwise, it is c_{CheckoutId}_{id}.

CData Python Connector for BigCommerce

PickupConsignments

Returns consignments and their corresponding pickups.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the OrderId column, which supports the = comparison.

For example, the following queries are processed server-side:

SELECT * FROM PickupConsignments WHERE OrderId = 123 

Columns

Name Type Description
Id Integer The ID of the pickup consignment to update.
OrderId Integer Identifier for the BigCommerce Order with which this transaction is associated.
PickupMethodId Integer The ID of the pickup consignment to update.
PickupMethodDisplayName String A name for the pickup method that can be displayed to shoppers.
CollectionInstructions String A message for shoppers explaining how to collect their pickup order.
CollectionTimeDescription String A message for shoppers indicating the estimated time their pickup order will be ready for collection.
LocationId Integer ID of the location.
LocationName String The name of the pickup location.
LocationCode String The code of the pickup location.
LocationAddressLine1 String Pickup location's Street address (first line)
LocationAddressLine2 String Pickup location's Street address (second line).
LocationCity String Pickup location's city.
LocationState String Pickup location's state.
LocationPostalCode String Pickup location's postal code.
LocationCountryAlpha2 String 2-letter ISO Alpha-2 code for the country.
LocationEmail String Pickup location's email address
LocationPhone String Pickup location's phone number.
PickupsLineItemResources String URL where you can use a GET request to get the pickups line items for the order consignment.
PickupsLineItemUrl String Path where you can use a GET request to get the pickups line items for the order consignment.

CData Python Connector for BigCommerce

PriceListAssignments

Returns an array of Price List Assignments matching a particular Customer Group and Price List and Channel.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • Id supports the = comparison.
  • CustomerGroupId supports the = and IN comparisons.
  • PriceListId supports the = and IN comparisons.
  • ChannelId supports the = and IN comparisons.

The rest of the filter is executed client-side within the connector.


SELECT * FROM PriceListAssignments WHERE CustomerGroupId IN (1, 2)

SELECT * FROM PriceListAssignments WHERE PriceListId IN (1, 2)

SELECT * FROM PriceListAssignments WHERE PriceListId = 1

SELECT * FROM PriceListAssignments WHERE CustomerGroupId = 1

Columns

Name Type Description
Id Integer The ID of the PriceList Assignment.
CustomerGroupId Integer The ID of the customer group.
PriceListId Integer The ID of the PriceList.
ChannelId Integer ID of the Channel.

CData Python Connector for BigCommerce

ProductBulkPricingRules

Returns bulk pricing rules applied to a product.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • Id supports the = comparison.
  • ProductId supports the = comparison.

The rest of the filter is executed client-side within the connector.

For example, the following queries are processed server-side:

SELECT * FROM ProductBulkPricingRules WHERE ProductId = 77

SELECT * FROM ProductBulkPricingRules WHERE ProductId = 77 AND Id = 1

Columns

Name Type Description
Id [KEY] Integer The ID of the bulk discount rule.
ProductId [KEY] Integer The ID of the product associated with this bulk discount rule.
Min Integer The minimum inclusive quantity of a product to satisfy this rule. Must be greater than or equal to zero.
Max Integer The maximum inclusive quantity of a product to satisfy this rule.
Type String Type of the discount.
TypeValue Decimal The value of the discount

CData Python Connector for BigCommerce

ProductCustomFields

Lists all tax classes.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • Id supports the = comparison.
  • ProductId supports the = comparison.

The rest of the filter is executed client-side within the connector.

For example, the following queries are processed server-side:

SELECT * FROM ProductCustomFields WHERE Id = 1 

SELECT * FROM ProductCustomFields WHERE ProductId = 2

Columns

Name Type Description
Id [KEY] Integer Numeric ID of the custom field.
ProductId Integer Id of the product that the custom field belongs to.
Name String Name of the custom field.
Text String Value of the custom field.

CData Python Connector for BigCommerce

ProductRules

Returns rules that modify the properties of a product, such as weight, price, and product image.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • Id supports the = comparison.
  • ProductId supports the = comparison.

The rest of the filter is executed client-side within the connector.

For example, the following queries are processed server-side:

SELECT * FROM ProductRules WHERE Id = 1 

SELECT * FROM ProductRules WHERE ProductId = 2 

Columns

Name Type Description
Id [KEY] Integer The ID of the rule.
ProductId [KEY] Integer The ID of the product to which the rule belongs.
SortOrder Integer The order in which the rule will be displayed on the product page.
IsEnabled Boolean If set to true, the rule will be evaluated when a customer configures a products options.
IsStop Boolean If set to true and the rule evaluates to true, no more rules with a higher sort_order will be processed.
PriceAdjusterName String Price adjuster name.
PriceAdjusterValue Decimal Price adjuster value.
WeightAdjusterName String Weight adjuster name.
WeightAdjusterValue Decimal Weight adjuster value.
IsPurchasingDisabled Boolean If true this rule prohibits purchasing the product with the configured option values.
PurchasingDisabledMessage String The message to display if the rule disabled purchasing the product.
IsPurchasingHidden Boolean If true the rule hides the options on the product.
ImageUrl String A path to an rule already uploaded via FTP in the import directory and the path should be relative from the import directory.

CData Python Connector for BigCommerce

ProductVariantValues

Returns data from Products table.

Columns

Name Type Description
Id [KEY] Integer The ID of the option value.
VariantId [KEY] Integer The ID of the corresponding variant.
OptionId [KEY] Integer The ID of the option.
Label String The label of the option value shown on the storefront.
DisplayName String The label of the option value shown on the storefront.
ProductId Integer The Id of the product

CData Python Connector for BigCommerce

ProductVariantValuesForLocale

List of product option values with locale overrides.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • ProductId supports the = comparison. Required filter.
  • ChannelId supports the = comparison. Required filter.
  • LocaleId supports the = comparison. Required filter.

The rest of the filter is executed client-side within the connector.

For example, the following queries are processed server-side:

SELECT * FROM ProductVariantValuesForLocale;
SELECT * FROM ProductVariantValuesForLocale WHERE ChannelId = '1' AND LocaleId = 'en'
SELECT * FROM ProductVariantValuesForLocale WHERE ChannelId = '1' AND LocaleId = 'en' and productId = '80';

This table returns shared product options along with their locale-specific overrides including display names and option values.

Columns

Name Type Description
OptionId [KEY] String The ID of the option.
ProductId [KEY] String The ID of the product.
LocaleValueId [KEY] String The ID of the localized option value.
StoreId String The ID of the store.
LocaleDisplayName String The localized display name of the option for the specified channel and locale.
LocaleValueLabel String The localized label of the option value.
ChannelId String Storefront channel ID.
LocaleId String Locale in a storefront channel.

CData Python Connector for BigCommerce

ProductVideos

Returns Embedded videos displayed on product listings.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • Id supports the = comparison.
  • ProductId supports the = comparison.

The rest of the filter is executed client-side within the connector.

For example, the following queries are processed server-side:

SELECT * FROM ProductVideos WHERE Id = 1 

SELECT * FROM ProductVideos WHERE ProductId = 1 

Columns

Name Type Description
Id [KEY] String ID of this video.
ProductId [KEY] Integer ID of the associated product.
SortOrder Integer Sort order for this video.
Name String The title for the video.
Length String The duration of the video.
Description String The description for the video.
VideoId String The ID of the video on a host site.
Type String The video type (a short name of a host site)
VideoURL String The URL for the video.

CData Python Connector for BigCommerce

Redirects

Lists all redirect URLs.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the Id column, which supports the = comparison.

The rest of the filter is executed client-side within the connector.

For example, the following query is processed server-side:

SELECT * FROM Redirects WHERE Id = 1 

Columns

Name Type Description
Id [KEY] Integer Numeric Id of the redirect.
SiteId Integer Site Id of the redirect.
FromPath String The path from which to redirect.
ToType String The type of redirect. Possible values are: product, brand, category, page, post, or url.
ToEntityId Integer EntityId of the redirect.
ToURL String URL of the redirect.
URL String Full destination URL for the redirect. Must be explicitly included via URL parameter.

CData Python Connector for BigCommerce

SharedVariantOptionsLocale

List of shared product options with locale overrides.



Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • ChannelId supports the = comparison. Required filter.
  • LocaleId supports the = comparison. Required filter.

The rest of the filter is executed client-side within the connector.

For example, the following queries are processed server-side:

SELECT * FROM SharedVariantOptionsLocale;
SELECT * FROM SharedVariantOptionsLocale WHERE ChannelId = '1' AND LocaleId = 'en'

This table returns shared product options along with their locale-specific overrides including display names and option values.

Columns

Name Type Description
SharedOptionId [KEY] String The ID of the shared product option.
SharedOptionValueLocaleId [KEY] String The ID of the localized shared option value.
ChannelId [KEY] String Storefront channel ID.
LocaleId [KEY] String Locale in a storefront channel.
StoreId String The ID of the store.
DisplayName String The display name of the shared product option.
SharedOptionDisplayName String The localized display name of the shared option for the specified channel and locale.
SharedOptionValueLocaleLabel String The localized label of the shared option value.

CData Python Connector for BigCommerce

ShipmentItems

Returns data from Items within a shipment.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • OrderShipmentId supports the = comparison.
  • OrderId supports the = comparison.

The rest of the filter is executed client-side within the connector.

For example, the following queries are processed server-side:

SELECT * FROM ShipmentItems WHERE OrderShipmentId = 1 

SELECT * FROM ShipmentItems WHERE OrderId = 2

Columns

Name Type Description
Id [KEY] Integer Id of the Product within the order.
ProductId [KEY] Integer Numerical Id of the product.
OrderShipmentId [KEY] String Id of the shipment.
Quantity Integer Quantity of product shipped.
OrderId Integer ID of the order associated with this shipment.

CData Python Connector for BigCommerce

ShippingConsignmentQuotes

Gets all shipping quotes persisted on an order for a shipping consignment.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

  • OrderId supports the = comparison.
  • ShippingConsignmentId supports the = comparison.

For example, the following queries are processed server-side:

SELECT * FROM ShippingConsignmentQuotes WHERE OrderId = 123 and ShippingConsignmentId = 234

Columns

Name Type Description
Id Integer ID of the shipping quote.
OrderId Integer Identifier for the BigCommerce Order with which this transaction is associated.
ShippingConsignmentId Integer ID of the shipping consignment.
UUID String UUID of the shipping quote.
Timestamp String Time the order was created in RFC 2822 format.
ProviderCode String Code of the shipping provider.
CarrierCode String Code of the shipping carrier.
RateCode String Type of delivery. This can vary based on shipping quote.
RateId String This can vary based on shipping quote.
MethodId Integer Shipping method ID.
ProviderQuoteRateValue Decimal Provider quote's rate_value.
ProviderQuoteRateUnit String Provider quote's rate_unit.
ProviderQuoteName String Provider quote's name.
ProviderQuoteTransitTime Integer Provider quote's transitTime.
ProviderQuoteSignatureConfirmationFee String Provider quote's signatureConfirmationFee.
ProviderQuoteCarrierName String Provider quote's CarrierName.
ProviderQuoteDeliveryMessage String Provider quote's deliveryMessage.
ProviderQuoteLabelSizes String Provider quote's label sizes.
ProviderQuoteDates String Provider quote's dates.
ProviderQuoteInsuredMailFee String Provider quote's insuredMailFee.
ProviderQuoteRateId String Provider quote's rateId.
ProviderQuoteDescription String Provider quote's description.
ProviderQuoteAdditionalInfo String Provider quote's additionalInfo.

CData Python Connector for BigCommerce

ShippingConsignments

Returns consignments and their corresponding shipping orders.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the Id column, which supports the = comparison.

For example, the following queries are processed server-side:

SELECT * FROM ShippingConsignments WHERE OrderId = 123 

Columns

Name Type Description
Id Integer ID of the shipping consignment.
OrderId Integer Identifier for the BigCommerce Order with which this transaction is associated.
FirstName String First name.
LastName String Last name.
Company String company.
Street1 String Street address (first line).
Street2 String Street address (second line).
Country String country
State String State
Email String Recipient?s email address.
Phone String Recipient?s telephone number.
ItemsTotal Decimal The total number of items in the order.
ItemsShipped Decimal The number of items that have been shipped.
ShippingMethod String Text identifying the BigCommerce shipping module selected by the customer.
BaseCost Decimal The base shipping cost value.
CostExTax Decimal The shipping cost value excluding tax.
CostIncTax Decimal The shipping cost value including tax.
CostTax Decimal The tax amount on the shipping cost.
CostTaxClassId Integer The ID of the tax class applied to the shipping cost. Ignored if automatic tax is enabled.
BaseHandlingCost Decimal The base handling charge.
HandlingCostExTax Decimal The handling charge, excluding tax.
HandlingCostIncTax Decimal The handling charge, including tax.
HandlingCostTax Decimal The handling charge, including tax number.
HandlingCostTaxClassId Integer The ID of the tax class applied to the handling charge. Ignored if automatic tax is enabled.
ShippingZoneId Decimal The numeric ID of the shipping zone.
ShippingZoneName String The name of the shipping zone.
ShippingQuotesResources String URL where you can use a GET request to get the shipping quotes for the order consignment.
ShippingQuotesUrl String Path where you can use a GET request to get the shipping quotes for the order consignment.
ZipCode String zip code of the shipping quotes.
ShippingLineItemResources String URL where you can use a GET request to get the shipping line items for the order consignment.
ShippingLineItemUrl String Path where you can use a GET request to get the shipping line items for the order consignment.
City String Path where you can use a GET request to get the shipping line items for the order consignment.
CountryIso String Path where you can use a GET request to get the shipping line items for the order consignment.

CData Python Connector for BigCommerce

ShippingZoneLocations

Lists all shipping zone locations

Columns

Name Type Description
Id [KEY] Integer Location's ID.
ShippingZoneId [KEY] Integer The Id of the Shipping Zone.
Zip String Location's ZIP/postal code.
CountryIso2 String 2-letter ISO Alpha-2 code for the country.
StateIso2 String ISO Alpha-2 code for the state.

CData Python Connector for BigCommerce

Stores

Lists all Stores.

Columns

Name Type Description
Id [KEY] String Unique store identifier.
Domain String Primary domain name.
SecureUrl String Stores current HTTPS URL.
Status String Status of the store.
Name String Stores name.
FirstName String Primary contacts first name
LastName String Primary contacts last name
Address String Display address.
Country String Country where the store is located
CountryCode String Country code.
Phone String Display phone number.
AdminEmail String Email address of the store administrator/owner.
OrderEmail String Email address for orders and fulfillment.
FaviconUrl String URL of the favicon.
TimezoneName String A string identifying the time zone, in the format: /.
TimezoneRawOffset Integer A negative or positive number, identifying the offset from UTC/GMT, in seconds, during winter/standard time.
Language String Default language code.
Currency String Default currency code
CurrencySymbol String Default symbol for values in the currency.
DecimalSeparator String Default decimal separator for values in the currency.
ThousandsSeparator String Default thousands separator for values in the currency.
DecimalPlaces Integer Default decimal places for values in the currency.
CurrencySymbolLocation String Default position of the currency symbol (left or right).
WeightUnits String Default weight units (metric or imperial).
DimensionUnits String Default dimension units (metric or imperial).
DimensionDecimalPlaces Integer The number of decimal places.
DimensionDecimalToken String The symbol that separates the whole numbers from the decimal points.
DimensionThousandsToken String The symbol used to denote thousands.
PlanName String Name of the BigCommerce plan to which this store is subscribed.
PlanLevel String Level of the BigCommerce plan to which this store is subscribed.
Industry String Industry, or vertical category, in which the business operates.
LogoUrl String URL of the logo.
IsPriceEnteredWithTax Boolean A Boolean value that indicates whether or not prices are entered with tax.
FeaturesStencilEnabled Boolean Indicates whether a store is using a Stencil theme.
FeaturesSitewideHttpsEnabled Boolean Indicates if there is sitewide https.
FeaturesFacebookCatalogId String Id of the facebook catalog. If there is none, it returns an empty string.
FeaturesCheckoutType String What type of checkout is enabled on the store.

CData Python Connector for BigCommerce

TaxClasses

Lists all tax classes.

Table Specific Information

Select

The connector uses the BigCommerce API to process WHERE clause conditions built with the Id column, which supports the = comparison.

The rest of the filter is executed client-side within the connector.

For example, the following queries is processed server-side:

SELECT * FROM TaxClasses WHERE Id = 1 

Columns

Name Type Description
Id [KEY] String Numeric ID of the tax class.
Name String Name of the tax class.
DateCreated Datetime The date when tax class was created.
DateModified Datetime The data when tax class was modified.

CData Python Connector for BigCommerce

Transactions

Lists all transactions.

Columns

Name Type Description
Id [KEY] Integer Unique identifier for the transaction.
OrderId String Identifier for the BigCommerce Order with which this transaction is associated.
Event String Store event that created the transaction.
Method String The payment method.
Amount Decimal Amount of money in the transaction.
Currency String Currency used for the transaction.
Gateway String The payment gateway.
Status String Status of the transaction.
GatewayTransactionId String The transaction ID returned by the payment gateway for this transaction item.
DateCreated Datetime The datetime of the transaction.
Test Boolean True if the transaction performed was a test, or if the gateway is in test mode.
FraudReview Boolean Result of gateway fraud review, if any.
ReferenceTransactionId Integer Identifier for an existing transaction upon which this transaction acts.
OfflineDisplayName String Display name for the offline payment.
CustomPaymentMethod String Custom payment from manual order.
PaymentMethodId String The payment method ID used for this transaction.
PaymentInstrumentToken String Internal BigPay token for stored card.
AVSResultCode String AVS code from the payment gateway.
AVSResultMessage String AVS message from the payment gateway.
AVSResultStreetMatch String AVS Code for street matching result.
AVSResultPostalMatch String AVS Code for postal matching result.
CVVResultCode String CVV Code from the payment Gateway.
CVVResultMessage String CVV Message from the payment Gateway.
CreditCardType String Type of credit-card.
CreditCardIIN String The IIN of a credit-card number.
CreditCardLast4 String The last 4 digits of a credit-card number.
CreditCardExpiryMonth Integer The expiry month of a credit-card.
CreditCardExpiryYear Integer The expiry year of a credit-card.
GiftCertificateCode String The gift-certificate code.
GiftCertificateOriginalBalance Decimal The balance on a gift certificate when it was purchased.
GiftCertificateStartingBalance Decimal The balance on a gift certificate at the time of this purchase.
GiftCertificateRemainingBalance Decimal The remaining balance on a gift certificate.
GiftCertificateStatus String The status of a gift certificate.
StoreCreditRemainingBalance Decimal Remaining balance of shopper's store credit.

CData Python Connector for BigCommerce

Stored Procedures

Stored procedures are function-like interfaces that extend the functionality of the connector beyond simple SELECT/INSERT/UPDATE/DELETE operations with BigCommerce.

Stored procedures accept a list of parameters, perform their intended function, and then return any relevant response data from BigCommerce, along with an indication of whether the procedure succeeded or failed.

CData Python Connector for BigCommerce Stored Procedures

Name Description
CreateBrandImage Creates a brand image.
DeleteBrandImage Deletes a brand image.
GetOAuthAccessToken Gets an authentication token from BigCommerce.
GetOAuthAuthorizationURL Gets the authorization URL that must be opened separately by the user to grant access to your application. Only needed when developing Web apps. You will request the OAuthAccessToken from this URL.
RemoveBasicInformationLocaleFields Supports removing fields from Basic Information.
RemoveProductCustomFieldsLocaleField Supports removing fields from Custom field locale.
RemoveProductModifiersOverrides Removes locale override fields for a product modifier.
RemoveSeoInformationLocaleFields Removing fields from SEO Information
RemoveSharedProductModifierOptionsLocaleField Removes locale override fields for a shared product modifier.
RemoveSharedVariantOptionsLocaleField Removes locale override fields for a shared variant option.
RemoveStoreFrontDetailsLocaleFields Supports removing fields from Storefront Details.
RemoveVariantOptionsLocaleField Removes locale override fields for a product variant option.
SetSharedVariantOptionsLocale Sets locale override fields for a shared variant option. Supports setting displayName and values for option types: Dropdown, RadioButtons, RectangleList, Swatch.
SetVariantOptionsLocale Sets locale override fields for a product variant option. Supports setting displayName and values for option types: Dropdown, RadioButtons, RectangleList, Swatch.

CData Python Connector for BigCommerce

CreateBrandImage

Creates a brand image.

Stored Procedure Specific Information

You can create a brand image using an image file. For example:

EXECUTE CreateBrandImage BrandId ='19128157751697', ImageFileLocation = 'D:\Desktop\Test.png'

Input

Name Type Required Description
BrandId String True The Id of the Brand.
ImageFileLocation String False The local path of the image file to be uploaded.
FileName String False File name that is uploaded. If content is not empty

Result Set Columns

Name Type Description
Status String The Status of the create operation.
ImageUrl String The URL of the Image uploaded.

CData Python Connector for BigCommerce

DeleteBrandImage

Deletes a brand image.

Stored Procedure Specific Information

You can delete the brand image of a particular brand. For example:

EXECUTE DeleteBrandImage BrandId ='19128157751697'

Input

Name Type Required Description
BrandId String True The Id of the Brand.

Result Set Columns

Name Type Description
Status String The Status of the delete operation.

CData Python Connector for BigCommerce

GetOAuthAccessToken

Gets an authentication token from BigCommerce.

Input

Name Type Required Description
AuthMode String False The type of authentication mode to use. Select App for getting authentication tokens via a desktop app. Select Web for getting authentication tokens via a Web app.

The allowed values are APP, WEB.

The default value is APP.

Scope String False A comma-separated list of permissions to request from the user. Please check the BigCommerce API for a list of available permissions.

The default value is store_v2_orders store_v2_customers store_v2_products store_v2_information.

CallbackUrl String False The URL the user will be redirected to after authorizing your application. This value must match the Redirect URL you have specified in the BigCommerce app settings. Only needed when the Authmode parameter is Web.
Verifier String False The verifier returned from BigCommerce after the user has authorized your app to have access to their data. This value will be returned as a parameter to the callback URL.
State String False Indicates any state which may be useful to your application upon receipt of the response. Your application receives the same value it sent, as this parameter makes a round-trip to the BigCommerce authorization server and back. Uses include redirecting the user to the correct resource in your site, nonces, and cross-site-request-forgery mitigations.

Result Set Columns

Name Type Description
OAuthAccessToken String The access token used for communication with BigCommerce.
ExpiresIn String The remaining lifetime on the access token. A -1 denotes that it will not expire.

CData Python Connector for BigCommerce

GetOAuthAuthorizationURL

Gets the authorization URL that must be opened separately by the user to grant access to your application. Only needed when developing Web apps. You will request the OAuthAccessToken from this URL.

Input

Name Type Required Description
CallbackUrl String False The URL the user will be redirected to after authorizing your application. This value must match the Redirect URL in the BigCommerce app settings.
Scope String False A comma-separated list of scopes to request from the user. Please check the BigCommerce API documentation for a list of available permissions.

The default value is store_v2_orders store_v2_customers store_v2_products store_v2_information.

State String False Indicates any state which may be useful to your application upon receipt of the response. Your application receives the same value it sent, as this parameter makes a round-trip to the BigCommerce authorization server and back. Uses include redirecting the user to the correct resource in your site, nonces, and cross-site-request-forgery mitigations.

Result Set Columns

Name Type Description
URL String The authorization URL, entered into a Web browser to obtain the verifier token and authorize your app.

CData Python Connector for BigCommerce

RemoveBasicInformationLocaleFields

Supports removing fields from Basic Information. 

Stored Procedure Specific Information

You can remove locale override fields for a product's basic information.

For example:

EXECUTE RemoveBasicInformationLocaleFields ProductId = '111', ChannelId = '1', LocaleId = 'en', FieldsToRemove = '"PRODUCT_NAME_FIELD"'

Input

Name Type Required Description
ProductId String True The ID of the product.
ChannelId String True The channel ID.
LocaleId String True The locale code (e.g., 'en', 'fr').
FieldsToRemove String True Comma-separated list or JSON array of fields to remove.

Result Set Columns

Name Type Description
ProductId String The ID of the product.
Success Boolean Indicates whether or not the operation executed successfully.
Details String Any extra details on the operation's execution.

CData Python Connector for BigCommerce

RemoveProductCustomFieldsLocaleField

Supports removing fields from Custom field locale. 

Stored Procedure Specific Information

You can remove locale override fields for a product's custom fields.

For example:

EXECUTE RemoveProductCustomFieldsLocaleField ProductId = '111', ChannelId = '1', LocaleId = 'en', CustomFieldId = '5', FieldsToRemove = '"PRODUCT_CUSTOM_FIELD_NAME_FIELD"'

Input

Name Type Required Description
ProductId String True The ID of the product.
ChannelId String True The channel ID.
LocaleId String True The locale code (e.g., 'en', 'fr').
CustomFieldId String True The locale code (e.g., 'en', 'fr').
FieldsToRemove String True Comma-separated list or JSON array of fields to remove.

Result Set Columns

Name Type Description
Success Boolean Indicates whether or not the operation executed successfully.
ProductId String The ID of the product.
Details String Any extra details on the operation's execution.

CData Python Connector for BigCommerce

RemoveProductModifiersOverrides

Removes locale override fields for a product modifier. 

Stored Procedure Specific Information

You can remove locale override fields for a product modifier. Each modifier type has specific field values that can be removed.

For example:

EXECUTE RemoveProductModifiersOverrides ProductId = '80', ModifierId = '121', ChannelId = '1', LocaleId = 'en', CheckboxFieldsToRemove = '"CHECKBOX_PRODUCT_MODIFIER_DISPLAY_NAME_FIELD"'

Input

Name Type Required Description
ProductId String True The ID of the product.
ModifierId String True The ID of the product modifier.
ChannelId String True The channel ID.
LocaleId String True The locale code (e.g., 'en', 'fr').
CheckboxFieldsToRemove String False Fields to remove for checkbox modifier. Valid values: CHECKBOX_PRODUCT_MODIFIER_DISPLAY_NAME_FIELD, CHECKBOX_PRODUCT_MODIFIER_FIELD_VALUE_FIELD
DateFieldFieldsToRemove String False Fields to remove for date field modifier. Valid values: DATE_FIELD_PRODUCT_MODIFIER_DISPLAY_NAME_FIELD
FileUploadFieldsToRemove String False Fields to remove for file upload modifier. Valid values: FILE_UPLOAD_PRODUCT_MODIFIER_DISPLAY_NAME_FIELD
TextFieldFieldsToRemove String False Fields to remove for text field modifier. Valid values: TEXT_FIELD_PRODUCT_MODIFIER_DISPLAY_NAME_FIELD, TEXT_FIELD_PRODUCT_MODIFIER_DEFAULT_VALUE_FIELD
MultilineTextFieldFieldsToRemove String False Fields to remove for multiline text field modifier. Valid values: MULTILINE_TEXT_FIELD_PRODUCT_MODIFIER_DISPLAY_NAME_FIELD, MULTILINE_TEXT_FIELD_PRODUCT_MODIFIER_DEFAULT_VALUE_FIELD
NumbersOnlyTextFieldFieldsToRemove String False Fields to remove for numbers only text field modifier. Valid values: NUMBERS_ONLY_TEXT_FIELD_PRODUCT_MODIFIER_DISPLAY_NAME_FIELD, NUMBERS_ONLY_TEXT_FIELD_PRODUCT_MODIFIER_DEFAULT_VALUE_FIELD
DropdownFieldsToRemove String False Fields to remove for dropdown modifier. Valid values: DROPDOWN_PRODUCT_MODIFIER_DISPLAY_NAME_FIELD, DROPDOWN_PRODUCT_MODIFIER_VALUES_FIELD
RadioButtonsFieldsToRemove String False Fields to remove for radio buttons modifier. Valid values: RADIO_BUTTONS_PRODUCT_MODIFIER_DISPLAY_NAME_FIELD, RADIO_BUTTONS_PRODUCT_MODIFIER_VALUES_FIELD
RectangleListFieldsToRemove String False Fields to remove for rectangle list modifier. Valid values: RECTANGLE_LIST_PRODUCT_MODIFIER_DISPLAY_NAME_FIELD, RECTANGLE_LIST_PRODUCT_MODIFIER_VALUES_FIELD
SwatchFieldsToRemove String False Fields to remove for swatch modifier. Valid values: SWATCH_PRODUCT_MODIFIER_DISPLAY_NAME_FIELD, SWATCH_PRODUCT_MODIFIER_VALUES_FIELD
PickListFieldsToRemove String False Fields to remove for pick list modifier. Valid values: PICK_LIST_PRODUCT_MODIFIER_DISPLAY_NAME_FIELD, PICK_LIST_PRODUCT_MODIFIER_VALUES_FIELD

Result Set Columns

Name Type Description
ProductId String The ID of the product.
Success Boolean Indicates whether or not the operation executed successfully.
Details String Any extra details on the operation's execution.

CData Python Connector for BigCommerce

RemoveSeoInformationLocaleFields

Removing fields from SEO Information 

Stored Procedure Specific Information

You can remove locale override fields for a product's SEO information.

For example:

EXECUTE RemoveSeoInformationLocaleFields ProductId = '111', ChannelId = '1', LocaleId = 'en', FieldsToRemove = '"PRODUCT_PAGE_TITLE_FIELD"'

Input

Name Type Required Description
ProductId String True The ID of the product.
ChannelId String True The channel ID.
LocaleId String True The locale code (e.g., 'en', 'fr').
FieldsToRemove String True Comma-separated list or JSON array of fields to remove.

Result Set Columns

Name Type Description
ProductId String The ID of the product.
Success Boolean Indicates whether or not the operation executed successfully.
Details String Any extra details on the operation's execution.

CData Python Connector for BigCommerce

RemoveSharedProductModifierOptionsLocaleField

Removes locale override fields for a shared product modifier. 

Stored Procedure Specific Information

You can remove locale override fields for a shared product modifier. Each modifier type has specific field values that can be removed.

For example:

EXECUTE RemoveSharedProductModifierOptionsLocaleField SharedProductModifierId = '2', ChannelId = '1', LocaleId = 'en', CheckboxFieldsToRemove = '"SHARED_CHECKBOX_PRODUCT_MODIFIER_DISPLAY_NAME_FIELD"'

Input

Name Type Required Description
SharedProductModifierId String True The ID of the shared product modifier.
ChannelId String True The channel ID.
LocaleId String True The locale code (e.g., 'en', 'fr').
CheckboxFieldsToRemove String False Fields to remove for checkbox modifier. Valid values: SHARED_CHECKBOX_PRODUCT_MODIFIER_DISPLAY_NAME_FIELD, SHARED_CHECKBOX_PRODUCT_MODIFIER_FIELD_VALUE_FIELD
DateFieldFieldsToRemove String False Fields to remove for date field modifier. Valid values: SHARED_DATE_FIELD_PRODUCT_MODIFIER_DISPLAY_NAME_FIELD
FileUploadFieldsToRemove String False Fields to remove for file upload modifier. Valid values: SHARED_FILE_UPLOAD_PRODUCT_MODIFIER_DISPLAY_NAME_FIELD
TextFieldFieldsToRemove String False Fields to remove for text field modifier. Valid values: SHARED_TEXT_FIELD_PRODUCT_MODIFIER_DISPLAY_NAME_FIELD, SHARED_TEXT_FIELD_PRODUCT_MODIFIER_DEFAULT_VALUE_FIELD
MultilineTextFieldFieldsToRemove String False Fields to remove for multiline text field modifier. Valid values: SHARED_MULTILINE_TEXT_FIELD_PRODUCT_MODIFIER_DISPLAY_NAME_FIELD, SHARED_MULTILINE_TEXT_FIELD_PRODUCT_MODIFIER_DEFAULT_VALUE_FIELD
NumbersOnlyTextFieldFieldsToRemove String False Fields to remove for numbers only text field modifier. Valid values: SHARED_NUMBERS_ONLY_TEXT_FIELD_PRODUCT_MODIFIER_DISPLAY_NAME_FIELD, SHARED_NUMBERS_ONLY_TEXT_FIELD_PRODUCT_MODIFIER_DEFAULT_VALUE_FIELD
DropdownFieldsToRemove String False Fields to remove for dropdown modifier. Valid values: SHARED_DROPDOWN_PRODUCT_MODIFIER_DISPLAY_NAME_FIELD, SHARED_DROPDOWN_PRODUCT_MODIFIER_VALUES_FIELD
RadioButtonsFieldsToRemove String False Fields to remove for radio buttons modifier. Valid values: SHARED_RADIO_BUTTONS_PRODUCT_MODIFIER_DISPLAY_NAME_FIELD, SHARED_RADIO_BUTTONS_PRODUCT_MODIFIER_VALUES_FIELD
RectangleListFieldsToRemove String False Fields to remove for rectangle list modifier. Valid values: SHARED_RECTANGLE_LIST_PRODUCT_MODIFIER_DISPLAY_NAME_FIELD, SHARED_RECTANGLE_LIST_PRODUCT_MODIFIER_VALUES_FIELD
SwatchFieldsToRemove String False Fields to remove for swatch modifier. Valid values: SHARED_SWATCH_PRODUCT_MODIFIER_DISPLAY_NAME_FIELD, SHARED_SWATCH_PRODUCT_MODIFIER_VALUES_FIELD

Result Set Columns

Name Type Description
SharedProductModifierId String The ID of the shared product modifier.
Success Boolean Indicates whether or not the operation executed successfully.
Details String Any extra details on the operation's execution.

CData Python Connector for BigCommerce

RemoveSharedVariantOptionsLocaleField

Removes locale override fields for a shared variant option. 

Stored Procedure Specific Information

You can remove locale override fields for a shared variant option. Each option type has specific field values that can be removed.

For example:

EXECUTE RemoveSharedVariantOptionsLocaleField SharedProductOptionId = '5', ChannelId = '1', LocaleId = 'en', DropdownFieldsToRemove = '"DROPDOWN_SHARED_PRODUCT_OPTION_DISPLAY_NAME_FIELD"', dropdownIds='"bc/store/sharedProductOptionValue/125", "bc/store/sharedProductOptionValue/126"'

Input

Name Type Required Description
SharedProductOptionId String True The ID of the shared product option.
ChannelId String True The channel ID.
LocaleId String True The locale code (e.g., 'en', 'fr').
DropdownFieldsToRemove String False Fields to remove for dropdown option. Valid values: SHARED_DROPDOWN_PRODUCT_OPTION_DISPLAY_NAME_FIELD, SHARED_DROPDOWN_PRODUCT_OPTION_VALUES_FIELD
DropdownIds String False Ids to remove for dropdown option.
RadioButtonsFieldsToRemove String False Fields to remove for radio buttons option. Valid values: SHARED_RADIO_BUTTONS_PRODUCT_OPTION_DISPLAY_NAME_FIELD, SHARED_RADIO_BUTTONS_PRODUCT_OPTION_VALUES_FIELD
RadioButtonsIds String False Ids to remove for radio buttons option.
RectangleListFieldsToRemove String False Fields to remove for rectangle list option. Valid values: SHARED_RECTANGLE_LIST_PRODUCT_OPTION_DISPLAY_NAME_FIELD, SHARED_RECTANGLE_LIST_PRODUCT_OPTION_VALUES_FIELD
RectangleListIds String False Ids to remove for rectangle list option.
SwatchFieldsToRemove String False Fields to remove for swatch option. Valid values: SHARED_SWATCH_PRODUCT_OPTION_DISPLAY_NAME_FIELD, SHARED_SWATCH_PRODUCT_OPTION_VALUES_FIELD
SwatchIds String False Ids to remove for swatch option.

Result Set Columns

Name Type Description
SharedProductOptionId String The ID of the shared product option.
Success Boolean Indicates whether or not the operation executed successfully.
Details String Any extra details on the operation's execution.

CData Python Connector for BigCommerce

RemoveStoreFrontDetailsLocaleFields

Supports removing fields from Storefront Details. 

Stored Procedure Specific Information

You can remove locale override fields for a product's storefront details.

For example:

EXECUTE RemoveStoreFrontDetailsLocaleFields ProductId = '111', ChannelId = '1', LocaleId = 'en', FieldsToRemove = '"PRODUCT_WARRANTY_FIELD"'

Input

Name Type Required Description
ProductId String True The ID of the product.
ChannelId String True The channel ID.
LocaleId String True The locale code (e.g., 'en', 'fr').
FieldsToRemove String True Comma-separated list or JSON array of fields to remove.

Result Set Columns

Name Type Description
ProductId String The ID of the product.
Success Boolean Indicates whether or not the operation executed successfully.
Details String Any extra details on the operation's execution.

CData Python Connector for BigCommerce

RemoveVariantOptionsLocaleField

Removes locale override fields for a product variant option. 

Stored Procedure Specific Information

You can remove locale override fields for a product variant option. Each option type has specific field values that can be removed.

For example:

EXECUTE RemoveVariantOptionsLocaleField ProductId = '80', ProductOptionId = '101', ChannelId = '1', LocaleId = 'en', DropdownFieldsToRemove = '"DROPDOWN_PRODUCT_OPTION_DISPLAY_NAME_FIELD"', dropdownIds='"bc/store/productOptionValue/125", "bc/store/productOptionValue/126"'

Input

Name Type Required Description
ProductId String True The ID of the product.
ProductOptionId String True The ID of the product option.
ChannelId String True The channel ID.
LocaleId String True The locale code (e.g., 'en', 'fr').
DropdownFieldsToRemove String False Fields to remove for dropdown option. Valid values: DROPDOWN_PRODUCT_OPTION_DISPLAY_NAME_FIELD, DROPDOWN_PRODUCT_OPTION_VALUES_FIELD
DropdownIds String False Ids to remove for dropdown option.
RadioButtonsFieldsToRemove String False Fields to remove for radio buttons option. Valid values: RADIO_BUTTONS_PRODUCT_OPTION_DISPLAY_NAME_FIELD, RADIO_BUTTONS_PRODUCT_OPTION_VALUES_FIELD
RadioButtonsIds String False Ids to remove for radio buttons option.
RectangleListFieldsToRemove String False Fields to remove for rectangle list option. Valid values: RECTANGLE_LIST_PRODUCT_OPTION_DISPLAY_NAME_FIELD, RECTANGLE_LIST_PRODUCT_OPTION_VALUES_FIELD
RectangleListIds String False Ids to remove for rectangle list option.
SwatchFieldsToRemove String False Fields to remove for swatch option. Valid values: SWATCH_PRODUCT_OPTION_DISPLAY_NAME_FIELD, SWATCH_PRODUCT_OPTION_VALUES_FIELD
SwatchIds String False Ids to remove for swatch option.

Result Set Columns

Name Type Description
ProductId String The ID of the product option.
ProductOptionId String The ID of the product option.
Success Boolean Indicates whether or not the operation executed successfully.
Details String Any extra details on the operation's execution.

CData Python Connector for BigCommerce

SetSharedVariantOptionsLocale

Sets locale override fields for a shared variant option. Supports setting displayName and values for option types: Dropdown, RadioButtons, RectangleList, Swatch. 

Stored Procedure Specific Information

You can set locale override fields for a shared variant option. Each option type (Dropdown, RadioButtons, RectangleList, Swatch) supports setting displayName and values.

The values parameter should be a JSON array of objects with valueId and label properties.

For example:

EXECUTE SetSharedVariantOptionsLocale SharedProductOptionId = '5', ChannelId = '1', LocaleId = 'fr', DropdownDisplayName = 'Taille', DropdownValues = '{"valueId": "bc/store/sharedProductOptionValue/101", "label": "Petit"}, {"valueId": "bc/store/sharedProductOptionValue/102", "label": "Grand"}'

Input

Name Type Required Description
SharedProductOptionId String True The ID of the shared product option.
ChannelId String True The channel ID.
LocaleId String True The locale code (e.g., 'en', 'fr').
DropdownDisplayName String False The localized display name for dropdown option.
DropdownValues String False The localized values for dropdown option.
RadioButtonsDisplayName String False The localized display name for radio buttons option.
RadioButtonsValues String False The localized values for radio buttons option.
RectangleListDisplayName String False The localized display name for rectangle list option.
RectangleListValues String False The localized values for rectangle list option.
SwatchDisplayName String False The localized display name for swatch option.
SwatchValues String False The localized values for swatch option.

Result Set Columns

Name Type Description
SharedProductOptionId String The ID of the shared product option.
Success Boolean Indicates whether or not the operation executed successfully.
Details String Any extra details on the operation's execution.

CData Python Connector for BigCommerce

SetVariantOptionsLocale

Sets locale override fields for a product variant option. Supports setting displayName and values for option types: Dropdown, RadioButtons, RectangleList, Swatch. 

Stored Procedure Specific Information

You can set locale override fields for a product variant option. Each option type (Dropdown, RadioButtons, RectangleList, Swatch) supports setting displayName and values.

The values parameter should be a JSON array of objects with valueId and label properties.

For example:

EXECUTE SetVariantOptionsLocale ProductId = '80', ProductOptionId = '101', ChannelId = '1', LocaleId = 'fr', DropdownDisplayName = 'Taille', DropdownValues = '{"valueId": "bc/store/productOptionValue/501", "label": "Petit"}, {"valueId": "bc/store/productOptionValue/502", "label": "Grand"}'

Input

Name Type Required Description
ProductId String True The ID of the product.
ProductOptionId String True The ID of the product option.
ChannelId String True The channel ID.
LocaleId String True The locale code (e.g., 'en', 'fr').
DropdownDisplayName String False The localized display name for dropdown option.
DropdownValues String False The localized values for dropdown option.
RadioButtonsDisplayName String False The localized display name for radio buttons option.
RadioButtonsValues String False The localized values for radio buttons option.
RectangleListDisplayName String False The localized display name for rectangle list option.
RectangleListValues String False The localized values for rectangle list option.
SwatchDisplayName String False The localized display name for swatch option.
SwatchValues String False The localized values for swatch option.

Result Set Columns

Name Type Description
ProductId String The ID of the product option.
ProductOptionId String The ID of the product option.
Success Boolean Indicates whether or not the operation executed successfully.
Details String Any extra details on the operation's execution.

CData Python Connector for BigCommerce

AccountAPI Data Model

The connector models the BigCommerce Account API as relational views and stored procedures.

Views

Predefined Tables and Views are available for read or write access to data from BigCommerce.

Stored Procedures

The connector allows you to list your BigCommerce objects and upload data to and download data from them via Stored Procedures.

CData Python Connector for BigCommerce

Tables

The connector models the data in BigCommerce as a list of tables in a relational database that can be queried using standard SQL statements.

CData Python Connector for BigCommerce Tables

Name Description
AppEventSources Returns Amazon EventSources associated with applications in the account.
CheckoutItems Returns the items associated with a checkout.

CData Python Connector for BigCommerce

AppEventSources

Returns Amazon EventSources associated with applications in the account.

Table-Specific Information

Select

Returns all Amazon Event Sources associated with your account's applications.

SELECT Id, AppId, EventSourceName, EventSourceRegion FROM AppEventSources;

Insert

To insert an Amazon event source for an application, specify at least the following columns: AppId, AwsAccount, EventSourceName, and EventSourceRegion.

INSERT INTO AppEventSources(AppId, AwsAccount, EventSourceName, EventSourceRegion) VALUES('bc/account/app/59074', 'accountName', 'sourceName', 'AF_SOUTH_1');

Delete


DELETE FROM AppEventSources WHERE AppId='bc/account/app/59074' and Id = 'bc/account/app/eventsource/59074';

Columns

Name Type ReadOnly Description
Id [KEY] String True

The ID of an event resource.

AccountId String True

The ID of the account.

AppId String False

The ID of the app.

AwsAccount String False

An Amazon EventSource account ID.

EventSourceName String False

An event source name.

EventSourceRegion String False

The region of an event source.

Arn String True

An Amazon EventSource resource name.

WebhooksCount Long True

Number of webhooks attached to an Amazon EventSource.

CData Python Connector for BigCommerce

CheckoutItems

Returns the items associated with a checkout.

Table-Specific Information

Select

Returns all checkout items associated with your account. Note: CheckoutId is required to fetch the data.

SELECT * FROM CheckoutItems WHERE CheckoutId = 'bc/account/checkout/78';

Insert

You can insert the following columns: AccountId, Description, ProductId, ProductType, ScopeId, ScopeType, PricingPlanInterval, PricingPlanPriceValue, PricingPlanPriceCurrencyCode, PricingPlanTrialDays, and RedirectUrl
 INSERT INTO CheckoutItems(AccountId, Description, ProductId, ProductType, ScopeId, ScopeType, PricingPlanInterval, PricingPlanPriceValue, PricingPlanPriceCurrencyCode, PricingPlanTrialDays, RedirectUrl) VALUES('bc/account/account/5f7a7943-e37c-45e5-8b6e-91b54f44abe9', 'Premium App Subscription', 'bc/store/product/77', 'APPLICATION', 'bc/store/scope/abc123', 'STORE', 'MONTH', '20.00', 'USD', 7, 'https://example.com/success');

Columns

Name Type ReadOnly Description
SubscriptionId [KEY] String False

If available, the ID of the Subscription associated with this Line Item.

AccountId String False

The ID of the Account.

CheckoutId String False

The ID of the checkout.

ProductId String False

The unique ID of the product.

ScopeId String False

The unique ID of the scope.

RedirectUrl String False

The URL used to redirect the Merchant after completing the Checkout.

ProductProductLevel String False

A description of the product level, if applicable (for example, application tier for an application).

ProductType String False

The type of product (for example, APPLICATION).

ScopeType String False

Where to scope access for this item (for example, STORE).

PricingPlanInterval String False

The billing interval for the subscription.

The allowed values are ANNUAL, MONTH, ONCE, QUARTER, SEMIANNUAL.

PricingPlanPriceCurrencyCode String False

The currency code for the pricing amount.

PricingPlanPriceValue Double False

The pricing amount.

PricingPlanTrialDays Int False

Number of days to delay billing to offer a free trial period.

Description String False

A description of this line item.

Status String True

The status of this line item.

CheckoutUrl String True

The URL to complete the checkout.

CData Python Connector for BigCommerce

Views

Views are similar to tables in the way that data is represented; however, views are read-only.

Queries can be executed against a view as if it were a normal table.

CData Python Connector for BigCommerce Views

Name Description
Account Returns details for the account.
Apps Returns applications owned by the account.
StoreApps Returns the list of applications installed on stores in the account.
Stores Returns the stores associated with the account.
StoreUsers Returns users belonging to a store.
Subscriptions Returns subscriptions belonging to the account.
Users Returns users belonging to the account.

CData Python Connector for BigCommerce

Account

Returns details for the account.

Table-Specific Information

Select

Returns details of the account.

SELECT Id, AccountInfoName FROM Account;

Columns

Name Type Description
Id [KEY] String The ID of the Account.
AccountInfoName String The name of an account.

CData Python Connector for BigCommerce

Apps

Returns applications owned by the account.

Table-Specific Information

Select

Returns all applications associated with your account.

SELECT * FROM Apps;
SELECT Id, Name FROM Apps;

Columns

Name Type Description
Id [KEY] String The ID of the App.
AccountId String The ID of the Account.
Name String The name of the application.

CData Python Connector for BigCommerce

StoreApps

Returns the list of applications installed on stores in the account.

Table-Specific Information

Select

Returns all applications associated with the stores.

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

ColumnSupported Operators
StoreId=, IN


SELECT * FROM StoreApps;
SELECT * FROM StoreApps WHERE StoreId = 'bc/account/store/8bjfqkmtug';

Columns

Name Type Description
Id [KEY] String The ID of the App associated with a store.
AccountId String The ID of the Account.
StoreId String The ID of the Store.
Name String The name of the application.

CData Python Connector for BigCommerce

Stores

Returns the stores associated with the account.

Table-Specific Information

Select

Returns all stores associated with the account.

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

ColumnSupported Operators
Id=, IN
StoreHash=, IN


SELECT * FROM Stores;
SELECT * FROM Stores WHERE Id = 'bc/account/store/8bjfqkmtug';
SELECT * FROM Stores WHERE StoreHash IN ('8bjfqkmtuh','8bjfqkmtug');

Columns

Name Type Description
Id [KEY] String The ID of the Store.
AccountId String The ID of the Account.
Name String The name of the store.
StoreHash String The hash that uniquely identifies the store.

CData Python Connector for BigCommerce

StoreUsers

Returns users belonging to a store.

Table-Specific Information

Select

Returns all users associated with the stores.

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

ColumnSupported Operators
StoreId=, IN


SELECT * FROM StoreUsers;
SELECT * FROM StoreUsers WHERE StoreId = 'bc/account/store/8bjfqkmtug';

Columns

Name Type Description
Id [KEY] String The ID of the User.
AccountId String The ID of the account.
StoreId [KEY] String The ID of the store.
Email String The email for the user.
FirstName String The first name of the user.
LastLoginAt Datetime The date and time the user last logged in.
LastName String The last name of the user.
Locale String The preferred locale of the user.
Permissions String The permissions for the user on the store.
Status String Current status of the user for the store.
UpdatedAt Datetime The date and time the user was last updated.

CData Python Connector for BigCommerce

Subscriptions

Returns subscriptions belonging to the account.

Table-Specific Information

Select

Returns all subscriptions associated with your account.

The connector uses the BigCommerce API to process WHERE clause conditions built with the following columns and operators:

ColumnSupported Operators
Id=, IN
ProductId=
ProductType=
Status=
ScopeId=
ScopeType=
UpdatedAt=

The rest of the filter is executed client-side within the connector. For example, the following queries are processed server-side:

SELECT * FROM Subscriptions WHERE Status = 'ACTIVE';

SELECT * FROM Subscriptions WHERE Id IN ('bc/account/subscription/123456','bc/account/subscription/789012');

SELECT * FROM Subscriptions WHERE ProductType = 'APPLICATION';

Columns

Name Type Description
Id [KEY] String The ID of the subscription.
AccountId String The ID of the account.
ActivationDate Datetime The date when the Subscription becomes active, ending any trial period, and billing the Merchant for the first time.
BillingInterval String The frequency of charges for the Merchant.
CreatedAt Datetime The date the subscription was created.
CurrentPeriodEnd Datetime The end of the current billing interval for the Merchant.
PricePerIntervalCurrencyCode String The currency code for the pricing amount.
PricePerIntervalValue Double The pricing amount.
ProductId String The unique ID of the product.
ProductType String The type of product (for example, APPLICATION).

The allowed values are APPLICATION, NONE.

ProductProductLevel String A description of the product level, if applicable (for example, application tier for an application).
Status String The status of this subscription.

The allowed values are ACTIVE, CANCELLED, SUSPENDED.

ScopeId String The unique ID of the scope.
ScopeType String The type of scope (for example, STORE).

The allowed values are STORE.

UpdatedAt Datetime The date the subscription was last updated.

CData Python Connector for BigCommerce

Users

Returns users belonging to the account.

Table-Specific Information

Select

Returns all users associated with your account.

SELECT * FROM Users;
SELECT Id, Email, FirstName, LastName FROM Users;

Columns

Name Type Description
Id [KEY] String The ID of the user.
AccountId String The ID of the Account.
Email String The email for the user.
FirstName String The first name of the user.
LastName String The last name of the user.
Locale String The preferred locale of the user.

CData Python Connector for BigCommerce

Stored Procedures

Stored procedures are function-like interfaces that extend the functionality of the connector beyond simple SELECT/INSERT/UPDATE/DELETE operations with BigCommerce.

Stored procedures accept a list of parameters, perform their intended function, and then return any relevant response data from BigCommerce, along with an indication of whether the procedure succeeded or failed.

CData Python Connector for BigCommerce Stored Procedures

Name Description
AddUserToAccount Adds a user to an account.
AddUserToStore Adds a user to a store.
CancelSubscription Cancels a subscription.
CreateUser Creates a new user
RemoveUserFromAccount Removes a user from an account
RemoveUserFromStore Removes a user from a store.

CData Python Connector for BigCommerce

AddUserToAccount

Adds a user to an account.

Stored Procedure-Specific Information

To add a user to the account, you must specify the Email parameter. The following example shows how to add a user to the account.

EXECUTE AddUserToAccount Email='abc@example.com';

Input

Name Type Required Description
Email String True The email of the user to be added to the account.

Result Set Columns

Name Type Description
Success Boolean Indicates whether or not the operation executed successfully.
Details String Any extra details on the operation's execution.
AccountInfoName String The name of the account to which the user was added.

CData Python Connector for BigCommerce

AddUserToStore

Adds a user to a store.

Stored Procedure-Specific Information

To add a user to the store, you must specify the following parameters: StoreId and either UserId or Email. The following example shows how to add a user to the store.

EXECUTE AddUserToStore Email='abc@example.com', StoreId='bc/account/store/9csrelntug';

EXECUTE AddUserToStore UserId='bc/account/user/123456', StoreId='bc/account/store/9csrelntug';

Input

Name Type Required Description
StoreId String True The ID of the store.
UserId String False The ID of the user to be added to the store.
Email String False The email of the user to be added to the store.

Result Set Columns

Name Type Description
Success Boolean Indicates whether or not the operation executed successfully.
Details String Any extra details on the operation's execution.
StoreId String The ID of the store to which the user was added.

CData Python Connector for BigCommerce

CancelSubscription

Cancels a subscription.

Stored Procedure-Specific Information

You can cancel a subscription for a merchant. To cancel the subscription, you must specify the following parameters: Id. The following example shows how to cancel a subscription.

EXECUTE CancelSubscription Id='bc/account/subscription/123456'

Input

Name Type Required Description
Id String True The ID of the Subscription.

Result Set Columns

Name Type Description
Success Boolean Indicates whether or not the operation executed successfully.
Details String Any extra details on the operation's execution.
SubscriptionId String The ID of the cancelled subscription.
CancelledAt Datetime The date the subscription will be cancelled.

CData Python Connector for BigCommerce

CreateUser

Creates a new user

Stored Procedure-Specific Information

To create a new user, you must specify the following parameters: Email, FirstName, LastName, and Locale. Note: This user appears in the Users table after you add the user to the account using the AddUserToAccount stored procedure. The following example shows how to create a new user.

EXECUTE CreateUser email='abc@example.com', firstname='jon', lastname='doe', locale='en-US';

Input

Name Type Required Description
Email String True The email of the user.
FirstName String True The first name of the user.
LastName String True The last name of the user.
Locale String True The locale of the user.

Result Set Columns

Name Type Description
Success Boolean Indicates whether or not the operation executed successfully.
Details String Any extra details on the operation's execution.
Id String The ID of the created user.
Locale String The locale of the created user.

CData Python Connector for BigCommerce

RemoveUserFromAccount

Removes a user from an account

Stored Procedure-Specific Information

To remove a user from the account, you must specify the Email parameter. The following example shows how to remove a user from the account.

EXECUTE RemoveUserFromAccount Email='abc@example.com';

Input

Name Type Required Description
Email String True The email of the user to be removed from the account.

Result Set Columns

Name Type Description
Success Boolean Indicates whether or not the operation executed successfully.
Details String Any extra details on the operation's execution.
AccountId String The ID of the account from which the user was removed.
UserId String The ID of the removed user.

CData Python Connector for BigCommerce

RemoveUserFromStore

Removes a user from a store.

Stored Procedure-Specific Information

To remove a user from the store, you must specify the following parameters: StoreId and UserId. The following example shows how to remove a user from the store.

EXECUTE RemoveUserFromStore UserId='bc/account/user/123456', StoreId='bc/account/store/9csrelntug';

Input

Name Type Required Description
StoreId String True The ID of the store.
UserId String True The ID of the user to be removed from the store.

Result Set Columns

Name Type Description
Success Boolean Indicates whether or not the operation executed successfully.
Details String Any extra details on the operation's execution.
StoreId String The ID of the store from which the user was removed.
UserId String The ID of the user removed from the store.

CData Python Connector for BigCommerce

System Tables

You can query the system tables described in this section to access schema information, information on data source functionality, and batch operation statistics.

Schema Tables

The following tables return database metadata for BigCommerce:

Data Source Tables

The following tables return information about how to connect to and query the data source:

  • sys_connection_props: Returns information on the available connection properties.
  • sys_sqlinfo: Describes the SELECT queries that the connector can offload to the data source.

Query Information Tables

The following table returns query statistics for data modification queries

  • sys_identity: Returns information about batch operations or single updates.

CData Python Connector for BigCommerce

sys_catalogs

Lists the available databases.

The following query retrieves all databases determined by the connection string:

SELECT * FROM sys_catalogs

Columns

Name Type Description
CatalogName String The database name.

CData Python Connector for BigCommerce

sys_schemas

Lists the available schemas.

The following query retrieves all available schemas:

          SELECT * FROM sys_schemas
          

Columns

Name Type Description
CatalogName String The database name.
SchemaName String The schema name.

CData Python Connector for BigCommerce

sys_tables

Lists the available tables.

The following query retrieves the available tables and views:

          SELECT * FROM sys_tables
          

Columns

Name Type Description
CatalogName String The database containing the table or view.
SchemaName String The schema containing the table or view.
TableName String The name of the table or view.
TableType String The table type (table or view).
Description String A description of the table or view.
IsUpdateable Boolean Whether the table can be updated.
IsInsertable Boolean Whether the table can be inserted into.
IsDeleteable Boolean Whether rows can be deleted from the table.

CData Python Connector for BigCommerce

sys_tablecolumns

Describes the columns of the available tables and views.

The following query returns the columns and data types for the Customers table:

SELECT ColumnName, DataTypeName FROM sys_tablecolumns WHERE TableName = 'Customers' 

Columns

Name Type Description
CatalogName String The name of the database containing the table or view.
SchemaName String The schema containing the table or view.
TableName String The name of the table or view containing the column.
ColumnName String The column name.
DataTypeName String The data type name.
DataType Int32 An integer indicating the data type. This value is determined at run time based on the environment.
Length Int32 The storage size of the column.
DisplaySize Int32 The designated column's normal maximum width in characters.
NumericPrecision Int32 The maximum number of digits in numeric data. The column length in characters for character and date-time data.
NumericScale Int32 The column scale or number of digits to the right of the decimal point.
IsNullable Boolean Whether the column can contain null.
Description String A brief description of the column.
Ordinal Int32 The sequence number of the column.
IsAutoIncrement String Whether the column value is assigned in fixed increments.
IsGeneratedColumn String Whether the column is generated.
IsHidden Boolean Whether the column is hidden.
IsArray Boolean Whether the column is an array.
IsReadOnly Boolean Whether the column is read-only.
IsKey Boolean Indicates whether a field returned from sys_tablecolumns is the primary key of the table.
ColumnType String The role or classification of the column in the schema. Possible values include SYSTEM, LINKEDCOLUMN, NAVIGATIONKEY, REFERENCECOLUMN, and NAVIGATIONPARENTCOLUMN.
ColumnCapabilities Int32 A bit mask denoting the column's write capabilities. The value is the sum of the following: 1 if the column is required for INSERTs, 2 if the column is allowed for INSERTs, and 4 if the column is allowed for UPDATEs. A value of 0 indicates that the write capabilities of the column are unknown or that the column is read-only.

CData Python Connector for BigCommerce

sys_procedures

Lists the available stored procedures.

The following query retrieves the available stored procedures:

          SELECT * FROM sys_procedures
          

Columns

Name Type Description
CatalogName String The database containing the stored procedure.
SchemaName String The schema containing the stored procedure.
ProcedureName String The name of the stored procedure.
Description String A description of the stored procedure.
ProcedureType String The type of the procedure, such as PROCEDURE or FUNCTION.

CData Python Connector for BigCommerce

sys_procedureparameters

Describes stored procedure parameters.

The following query returns information about all of the input parameters for the SelectEntries stored procedure:

SELECT * FROM sys_procedureparameters WHERE ProcedureName = 'SelectEntries' AND Direction = 1 OR Direction = 2

To include result set columns in addition to the parameters, set the IncludeResultColumns pseudo column to True:

SELECT * FROM sys_procedureparameters WHERE ProcedureName = 'SelectEntries' AND IncludeResultColumns='True'

Columns

Name Type Description
CatalogName String The name of the database containing the stored procedure.
SchemaName String The name of the schema containing the stored procedure.
ProcedureName String The name of the stored procedure containing the parameter.
ColumnName String The name of the stored procedure parameter.
Direction Int32 An integer corresponding to the type of the parameter: input (1), input/output (2), or output(4). input/output type parameters can be both input and output parameters.
DataType Int32 An integer indicating the data type. This value is determined at run time based on the environment.
DataTypeName String The name of the data type.
NumericPrecision Int32 The maximum precision for numeric data. The column length in characters for character and date-time data.
Length Int32 The number of characters allowed for character data. The number of digits allowed for numeric data.
NumericScale Int32 The number of digits to the right of the decimal point in numeric data.
IsNullable Boolean Whether the parameter can contain null.
IsRequired Boolean Whether the parameter is required for execution of the procedure.
IsArray Boolean Whether the parameter is an array.
Description String The description of the parameter.
Ordinal Int32 The index of the parameter.
Values String The values you can set in this parameter are limited to those shown in this column. Possible values are comma-separated.
SupportsStreams Boolean Whether the parameter represents a file that you can pass as either a file path or a stream.
IsPath Boolean Whether the parameter is a target path for a schema creation operation.
Default String The value used for this parameter when no value is specified.
SpecificName String A label that, when multiple stored procedures have the same name, uniquely identifies each identically-named stored procedure. If there's only one procedure with a given name, its name is simply reflected here.
IsCDataProvided Boolean Whether the procedure is added/implemented by CData, as opposed to being a native BigCommerce procedure.

Pseudo-Columns

Name Type Description
IncludeResultColumns Boolean Whether the output should include columns from the result set in addition to parameters. Defaults to False.

CData Python Connector for BigCommerce

sys_keycolumns

Describes the primary and foreign keys.

The following query retrieves the primary key for the Customers table:

         SELECT * FROM sys_keycolumns WHERE IsKey='True' AND TableName='Customers' 
          

Columns

Name Type Description
CatalogName String The name of the database containing the key.
SchemaName String The name of the schema containing the key.
TableName String The name of the table containing the key.
ColumnName String The name of the key column.
IsKey Boolean Whether the column is a primary key in the table referenced in the TableName field.
IsForeignKey Boolean Whether the column is a foreign key referenced in the TableName field.
PrimaryKeyName String The name of the primary key.
ForeignKeyName String The name of the foreign key.
ReferencedCatalogName String The database containing the primary key.
ReferencedSchemaName String The schema containing the primary key.
ReferencedTableName String The table containing the primary key.
ReferencedColumnName String The column name of the primary key.

CData Python Connector for BigCommerce

sys_foreignkeys

Describes the foreign keys.

The following query retrieves all foreign keys which refer to other tables:

         SELECT * FROM sys_foreignkeys WHERE ForeignKeyType = 'FOREIGNKEY_TYPE_IMPORT'
          

Columns

Name Type Description
CatalogName String The name of the database containing the key.
SchemaName String The name of the schema containing the key.
TableName String The name of the table containing the key.
ColumnName String The name of the key column.
PrimaryKeyName String The name of the primary key.
ForeignKeyName String The name of the foreign key.
ReferencedCatalogName String The database containing the primary key.
ReferencedSchemaName String The schema containing the primary key.
ReferencedTableName String The table containing the primary key.
ReferencedColumnName String The column name of the primary key.
ForeignKeyType String Designates whether the foreign key is an import (points to other tables) or export (referenced from other tables) key.

CData Python Connector for BigCommerce

sys_primarykeys

Describes the primary keys.

The following query retrieves the primary keys from all tables and views:

         SELECT * FROM sys_primarykeys
          

Columns

Name Type Description
CatalogName String The name of the database containing the key.
SchemaName String The name of the schema containing the key.
TableName String The name of the table containing the key.
ColumnName String The name of the key column.
KeySeq String The sequence number of the primary key.
KeyName String The name of the primary key.

CData Python Connector for BigCommerce

sys_indexes

Describes the available indexes. By filtering on indexes, you can write more selective queries with faster query response times.

The following query retrieves all indexes that are not primary keys:

          SELECT * FROM sys_indexes WHERE IsPrimary='false'
          

Columns

Name Type Description
CatalogName String The name of the database containing the index.
SchemaName String The name of the schema containing the index.
TableName String The name of the table containing the index.
IndexName String The index name.
ColumnName String The name of the column associated with the index.
IsUnique Boolean True if the index is unique. False otherwise.
IsPrimary Boolean True if the index is a primary key. False otherwise.
Type Int16 An integer value corresponding to the index type: statistic (0), clustered (1), hashed (2), or other (3).
SortOrder String The sort order: A for ascending or D for descending.
OrdinalPosition Int16 The sequence number of the column in the index.

CData Python Connector for BigCommerce

sys_connection_props

Returns information on the available connection properties and those set in the connection string.

The following query retrieves all connection properties that have been set in the connection string or set through a default value:

SELECT * FROM sys_connection_props WHERE Value <> ''

Columns

Name Type Description
Name String The name of the connection property.
ShortDescription String A brief description.
Type String The data type of the connection property.
Default String The default value if one is not explicitly set.
Values String A comma-separated list of possible values. A validation error is thrown if another value is specified.
Value String The value you set or a preconfigured default.
Required Boolean Whether the property is required to connect.
Category String The category of the connection property.
IsSessionProperty String Whether the property is a session property, used to save information about the current connection.
Sensitivity String The sensitivity level of the property. This informs whether the property is obfuscated in logging and authentication forms.
PropertyName String A camel-cased truncated form of the connection property name.
Ordinal Int32 The index of the parameter.
CatOrdinal Int32 The index of the parameter category.
Hierarchy String Shows dependent properties associated that need to be set alongside this one.
Visible Boolean Informs whether the property is visible in the connection UI.
ETC String Various miscellaneous information about the property.

CData Python Connector for BigCommerce

sys_sqlinfo

Describes the SELECT query processing that the connector can offload to the data source.

See SQL Compliance for SQL syntax details.

Discovering the Data Source's SELECT Capabilities

Below is an example data set of SQL capabilities. Some aspects of SELECT functionality are returned in a comma-separated list if supported; otherwise, the column contains NO.

NameDescriptionPossible Values
AGGREGATE_FUNCTIONSSupported aggregation functions.AVG, COUNT, MAX, MIN, SUM, DISTINCT
COUNTWhether COUNT function is supported.YES, NO
IDENTIFIER_QUOTE_OPEN_CHARThe opening character used to escape an identifier.[
IDENTIFIER_QUOTE_CLOSE_CHARThe closing character used to escape an identifier.]
SUPPORTED_OPERATORSA list of supported SQL operators.=, >, <, >=, <=, <>, !=, LIKE, NOT LIKE, IN, NOT IN, IS NULL, IS NOT NULL, AND, OR
GROUP_BYWhether GROUP BY is supported, and, if so, the degree of support.NO, NO_RELATION, EQUALS_SELECT, SQL_GB_COLLATE
OJ_CAPABILITIESThe supported varieties of outer joins supported.NO, LEFT, RIGHT, FULL, INNER, NOT_ORDERED, ALL_COMPARISON_OPS
OUTER_JOINSWhether outer joins are supported.YES, NO
SUBQUERIESWhether subqueries are supported, and, if so, the degree of support.NO, COMPARISON, EXISTS, IN, CORRELATED_SUBQUERIES, QUANTIFIED
STRING_FUNCTIONSSupported string functions.LENGTH, CHAR, LOCATE, REPLACE, SUBSTRING, RTRIM, LTRIM, RIGHT, LEFT, UCASE, SPACE, SOUNDEX, LCASE, CONCAT, ASCII, REPEAT, OCTET, BIT, POSITION, INSERT, TRIM, UPPER, REGEXP, LOWER, DIFFERENCE, CHARACTER, SUBSTR, STR, REVERSE, PLAN, UUIDTOSTR, TRANSLATE, TRAILING, TO, STUFF, STRTOUUID, STRING, SPLIT, SORTKEY, SIMILAR, REPLICATE, PATINDEX, LPAD, LEN, LEADING, KEY, INSTR, INSERTSTR, HTML, GRAPHICAL, CONVERT, COLLATION, CHARINDEX, BYTE
NUMERIC_FUNCTIONSSupported numeric functions.ABS, ACOS, ASIN, ATAN, ATAN2, CEILING, COS, COT, EXP, FLOOR, LOG, MOD, SIGN, SIN, SQRT, TAN, PI, RAND, DEGREES, LOG10, POWER, RADIANS, ROUND, TRUNCATE
TIMEDATE_FUNCTIONSSupported date/time functions.NOW, CURDATE, DAYOFMONTH, DAYOFWEEK, DAYOFYEAR, MONTH, QUARTER, WEEK, YEAR, CURTIME, HOUR, MINUTE, SECOND, TIMESTAMPADD, TIMESTAMPDIFF, DAYNAME, MONTHNAME, CURRENT_DATE, CURRENT_TIME, CURRENT_TIMESTAMP, EXTRACT
REPLICATION_SKIP_TABLESIndicates tables skipped during replication.
REPLICATION_TIMECHECK_COLUMNSA string array containing a list of columns which will be used to check for (in the given order) to use as a modified column during replication.
IDENTIFIER_PATTERNString value indicating what string is valid for an identifier.
SUPPORT_TRANSACTIONIndicates if the provider supports transactions such as commit and rollback.YES, NO
DIALECTIndicates the SQL dialect to use.
KEY_PROPERTIESIndicates the properties which identify the uniform database.
SUPPORTS_MULTIPLE_SCHEMASIndicates if multiple schemas may exist for the provider.YES, NO
SUPPORTS_MULTIPLE_CATALOGSIndicates if multiple catalogs may exist for the provider.YES, NO
DATASYNCVERSIONThe CData Data Sync version needed to access this driver.Standard, Starter, Professional, Enterprise
DATASYNCCATEGORYThe CData Data Sync category of this driver.Source, Destination, Cloud Destination
SUPPORTSENHANCEDSQLWhether enhanced SQL functionality beyond what is offered by the API is supported.TRUE, FALSE
SUPPORTS_BATCH_OPERATIONSWhether batch operations are supported.YES, NO
SQL_CAPAll supported SQL capabilities for this driver.SELECT, INSERT, DELETE, UPDATE, TRANSACTIONS, ORDERBY, OAUTH, ASSIGNEDID, LIMIT, LIKE, BULKINSERT, COUNT, BULKDELETE, BULKUPDATE, GROUPBY, HAVING, AGGS, OFFSET, REPLICATE, COUNTDISTINCT, JOINS, DROP, CREATE, DISTINCT, INNERJOINS, SUBQUERIES, ALTER, MULTIPLESCHEMAS, GROUPBYNORELATION, OUTERJOINS, UNIONALL, UNION, UPSERT, GETDELETED, CROSSJOINS, GROUPBYCOLLATE, MULTIPLECATS, FULLOUTERJOIN, MERGE, JSONEXTRACT, BULKUPSERT, SUM, SUBQUERIESFULL, MIN, MAX, JOINSFULL, XMLEXTRACT, AVG, MULTISTATEMENTS, FOREIGNKEYS, CASE, LEFTJOINS, COMMAJOINS, WITH, LITERALS, RENAME, NESTEDTABLES, EXECUTE, BATCH, BASIC, INDEX
PREFERRED_CACHE_OPTIONSA string value specifies the preferred cacheOptions.
ENABLE_EF_ADVANCED_QUERYIndicates if the driver directly supports advanced queries coming from Entity Framework. If not, queries will be handled client side.YES, NO
PSEUDO_COLUMNSA string array indicating the available pseudo columns.
MERGE_ALWAYSIf the value is true, The Merge Mode is forcibly executed in Data Sync.TRUE, FALSE
REPLICATION_MIN_DATE_QUERYA select query to return the replicate start datetime.
REPLICATION_MIN_FUNCTIONAllows a provider to specify the formula name to use for executing a server side min.
REPLICATION_START_DATEAllows a provider to specify a replicate startdate.
REPLICATION_MAX_DATE_QUERYA select query to return the replicate end datetime.
REPLICATION_MAX_FUNCTIONAllows a provider to specify the formula name to use for executing a server side max.
IGNORE_INTERVALS_ON_INITIAL_REPLICATEA list of tables which will skip dividing the replicate into chunks on the initial replicate.
CHECKCACHE_USE_PARENTIDIndicates whether the CheckCache statement should be done against the parent key column.TRUE, FALSE
CREATE_SCHEMA_PROCEDURESIndicates stored procedures that can be used for generating schema files.

The following query retrieves the operators that can be used in the WHERE clause:

SELECT * FROM sys_sqlinfo WHERE Name = 'SUPPORTED_OPERATORS'
Note that individual tables may have different limitations or requirements on the WHERE clause; refer to the Data Model section for more information.

Columns

Name Type Description
NAME String A component of SQL syntax, or a capability that can be processed on the server.
VALUE String Detail on the supported SQL or SQL syntax.

CData Python Connector for BigCommerce

sys_identity

Returns information about attempted modifications.

The following query retrieves the Ids of the modified rows in a batch operation:

         SELECT * FROM sys_identity
          

Columns

Name Type Description
Id String The database-generated Id returned from a data modification operation.
Batch String An identifier for the batch. 1 for a single operation.
Operation String The result of the operation in the batch: INSERTED, UPDATED, or DELETED.
Message String SUCCESS or an error message if the update in the batch failed.

CData Python Connector for BigCommerce

sys_information

Describes the available system information.

The following query retrieves all columns:

SELECT * FROM sys_information

Columns

NameTypeDescription
ProductStringThe name of the product.
VersionStringThe version number of the product.
DatasourceStringThe name of the datasource the product connects to.
NodeIdStringThe unique identifier of the machine where the product is installed.
HelpURLStringThe URL to the product's help documentation.
LicenseStringThe license information for the product. (If this information is not available, the field may be left blank or marked as 'N/A'.)
LocationStringThe file path location where the product's library is stored.
EnvironmentStringThe version of the environment or rumtine the product is currently running under.
DataSyncVersionStringThe tier of CData Sync required to use this connector.
DataSyncCategoryStringThe category of CData Sync functionality (e.g., Source, Destination).

CData Python Connector for BigCommerce

Connection String Options

The connection string properties are the various options that can be used to establish a connection. This section provides a complete list of the options you can configure in the connection string for this provider. Click the links for further details.

For more information on establishing a connection, see Establishing a Connection.

Authentication


PropertyDescription
SchemaSelect the schema type for BigCommerce API access. If you want to use the AccountAPI of BigCommerce, use AccountAPI as the schema; otherwise, use BigCommerce to get access to REST and Admin API.
AuthSchemeThe type of authentication to use when connecting to BigCommerce.
StoreIdThe store hash for this BigCommerce account.
AccountIdThe account ID for this BigCommerce account.

OAuth


PropertyDescription
InitiateOAuthSpecifies the process for obtaining or refreshing the OAuth access token, which maintains user access while an authenticated, authorized user is working.
OAuthClientIdSpecifies the client ID (also known as the consumer key) assigned to your custom OAuth application. This ID is required to identify the application to the OAuth authorization server during authentication.
OAuthClientSecretSpecifies the client secret assigned to your custom OAuth application. This confidential value is used to authenticate the application to the OAuth authorization server. (Custom OAuth applications only.).
OAuthAccessTokenSpecifies the OAuth access token used to authenticate requests to the data source. This token is issued by the authorization server after a successful OAuth exchange.
OAuthSettingsLocationSpecifies the location of the settings file where OAuth values are saved.
CallbackURLIdentifies the URL users return to after authenticating to BigCommerce via OAuth (Custom OAuth applications only).
ScopeSpecifies the scope of the authenticating user's access to the application, to ensure they get appropriate access to data. If a custom OAuth application is needed, this is generally specified at the time the application is created.
OAuthVerifierSpecifies a verifier code returned from the OAuthAuthorizationURL . Used when authenticating to OAuth on a headless server, where a browser can't be launched. Requires both OAuthSettingsLocation and OAuthVerifier to be set.
OAuthExpiresInSpecifies the duration in seconds, of an OAuth Access Token's lifetime. The token can be reissued to keep access alive as long as the user keeps working.
OAuthTokenTimestampDisplays a Unix epoch timestamp in milliseconds that shows how long ago the current access token was created.

SSL


PropertyDescription
SSLServerCertSpecifies the certificate to be accepted from the server when connecting using TLS/SSL.

Firewall


PropertyDescription
FirewallTypeSpecifies the protocol the provider uses to tunnel traffic through a proxy-based firewall.
FirewallServerIdentifies the IP address, DNS name, or host name of a proxy used to traverse a firewall and relay user queries to network resources.
FirewallPortSpecifies the TCP port to be used for a proxy-based firewall.
FirewallUserIdentifies the user ID of the account authenticating to a proxy-based firewall.
FirewallPasswordSpecifies the password of the user account authenticating to a proxy-based firewall.

Proxy


PropertyDescription
ProxyAutoDetectSpecifies whether the provider checks your system proxy settings for existing proxy server configurations, rather than using a manually specified proxy server.
ProxyServerIdentifies the hostname or IP address of the proxy server through which you want to route HTTP traffic.
ProxyPortIdentifies the TCP port on your specified proxy server that has been reserved for routing HTTP traffic to and from the client.
ProxyAuthSchemeSpecifies the authentication method the provider uses when authenticating to the proxy server specified in the ProxyServer connection property.
ProxyUserProvides the username of a user account registered with the proxy server specified in the ProxyServer connection property.
ProxyPasswordSpecifies the password of the user specified in the ProxyUser connection property.
ProxySSLTypeSpecifies the SSL type to use when connecting to the proxy server specified in the ProxyServer connection property.
ProxyExceptionsSpecifies a semicolon-separated list of destination hostnames or IPs that are exempt from connecting through the proxy server set in the ProxyServer connection property.

Logging


PropertyDescription
LogfileSpecifies the file path to the log file where the provider records its activities, such as authentication, query execution, and connection details.
VerbositySpecifies the verbosity level of the log file, which controls the amount of detail logged. Supported values range from 1 to 5.
LogModulesSpecifies the core modules to include in the log file. Use a semicolon-separated list of module names. By default, all modules are logged.
MaxLogFileSizeSpecifies the maximum size of a single log file in bytes. For example, '10 MB'. When the file reaches the limit, the provider creates a new log file with the date and time appended to the name.
MaxLogFileCountSpecifies the maximum number of log files the provider retains. When the limit is reached, the oldest log file is deleted to make space for a new one.

Schema


PropertyDescription
LocationSpecifies the location of a directory containing schema files that define tables, views, and stored procedures. Depending on your service's requirements, this may be expressed as either an absolute path or a relative path.
BrowsableSchemasOptional setting that restricts the schemas reported to a subset of all available schemas. For example, BrowsableSchemas=SchemaA,SchemaB,SchemaC .
TablesOptional setting that restricts the tables reported to a subset of all available tables. For example, Tables=TableA,TableB,TableC .
ViewsOptional setting that restricts the views reported to a subset of the available tables. For example, Views=ViewA,ViewB,ViewC .

Caching


PropertyDescription
AutoCacheSpecifies whether the content of tables targeted by SELECT queries is automatically cached to the specified cache database.
CacheProviderThe namespace of an ADO.NET provider. The specified provider is used as the target database for all caching operations.
CacheDriverThe driver class of a JDBC driver. The specified driver is used to connect to the target database for all caching operations.
CacheConnectionSpecifies the connection string for the specified cache database.
CacheLocationSpecifies the path to the cache when caching to a file.
CacheToleranceNotes the tolerance, in seconds, for stale data in the specified cache database. Requires AutoCache to be set to True.
OfflineGets the data from the specified cache database instead of live BigCommerce data.
CacheMetadataDetermines whether the provider caches table metadata to a file-based cache database.

Miscellaneous


PropertyDescription
CustomFieldDiscoverySpecifies whether to merge customfields by name or create unique customfields by id to the Products table.
IncludeCustomFieldsA boolean indicating if you would like to include custom fields in the column listing.
MaxRowsSpecifies the maximum number of rows returned for queries that do not include either aggregation or GROUP BY.
OtherSpecifies advanced connection properties for specialized scenarios. Use this property only under the guidance of our Support team to address specific issues.
PseudoColumnsSpecifies the pseudocolumns to expose as table columns, expressed as a string in the format 'TableName=ColumnName;TableName=ColumnName'.
ReadonlyToggles read-only access to BigCommerce from the provider.
RowScanDepthThe maximum number of rows to scan to look for the columns available in a table.
RTKSpecifies the runtime key for licensing the provider. If unset or invalid, the provider defaults to the standard licensing method. This property is only required in environments where the standard licensing method is unsupported or requires a runtime key.
TimeoutSpecifies the maximum time, in seconds, that the provider waits for a server response before throwing a timeout error.
UserDefinedViewsSpecifies a filepath to a JSON configuration file that defines custom views. The provider automatically detects and uses the views specified in this file.
CData Python Connector for BigCommerce

Authentication

This section provides a complete list of the Authentication properties you can configure in the connection string for this provider.


PropertyDescription
SchemaSelect the schema type for BigCommerce API access. If you want to use the AccountAPI of BigCommerce, use AccountAPI as the schema; otherwise, use BigCommerce to get access to REST and Admin API.
AuthSchemeThe type of authentication to use when connecting to BigCommerce.
StoreIdThe store hash for this BigCommerce account.
AccountIdThe account ID for this BigCommerce account.
CData Python Connector for BigCommerce

Schema

Select the schema type for BigCommerce API access. If you want to use the AccountAPI of BigCommerce, use AccountAPI as the schema; otherwise, use BigCommerce to get access to REST and Admin API.

Possible Values

BigCommerce, AccountAPI

Data Type

string

Default Value

"BigCommerce"

Remarks

If you want to use the AccountAPI of BigCommerce, use AccountAPI as the schema; otherwise, use BigCommerce to get access to REST and Admin API.

CData Python Connector for BigCommerce

AuthScheme

The type of authentication to use when connecting to BigCommerce.

Possible Values

OAuth, PersonalAccessToken

Data Type

string

Default Value

"OAuth"

Remarks

  • OAuth: Set this when you want to autheticate using OAuth Credentials Created from BigCommerce App.
  • PersonalAccessToken: Set this when you want to autheticate using OAuthAccess Token generated from BigCommerce UI.

CData Python Connector for BigCommerce

StoreId

The store hash for this BigCommerce account.

Data Type

string

Default Value

""

Remarks

The store hash for this BigCommerce account.

CData Python Connector for BigCommerce

AccountId

The account ID for this BigCommerce account.

Data Type

string

Default Value

""

Remarks

The account ID for this BigCommerce account.

CData Python Connector for BigCommerce

OAuth

This section provides a complete list of the OAuth properties you can configure in the connection string for this provider.


PropertyDescription
InitiateOAuthSpecifies the process for obtaining or refreshing the OAuth access token, which maintains user access while an authenticated, authorized user is working.
OAuthClientIdSpecifies the client ID (also known as the consumer key) assigned to your custom OAuth application. This ID is required to identify the application to the OAuth authorization server during authentication.
OAuthClientSecretSpecifies the client secret assigned to your custom OAuth application. This confidential value is used to authenticate the application to the OAuth authorization server. (Custom OAuth applications only.).
OAuthAccessTokenSpecifies the OAuth access token used to authenticate requests to the data source. This token is issued by the authorization server after a successful OAuth exchange.
OAuthSettingsLocationSpecifies the location of the settings file where OAuth values are saved.
CallbackURLIdentifies the URL users return to after authenticating to BigCommerce via OAuth (Custom OAuth applications only).
ScopeSpecifies the scope of the authenticating user's access to the application, to ensure they get appropriate access to data. If a custom OAuth application is needed, this is generally specified at the time the application is created.
OAuthVerifierSpecifies a verifier code returned from the OAuthAuthorizationURL . Used when authenticating to OAuth on a headless server, where a browser can't be launched. Requires both OAuthSettingsLocation and OAuthVerifier to be set.
OAuthExpiresInSpecifies the duration in seconds, of an OAuth Access Token's lifetime. The token can be reissued to keep access alive as long as the user keeps working.
OAuthTokenTimestampDisplays a Unix epoch timestamp in milliseconds that shows how long ago the current access token was created.
CData Python Connector for BigCommerce

InitiateOAuth

Specifies the process for obtaining or refreshing the OAuth access token, which maintains user access while an authenticated, authorized user is working.

Possible Values

OFF, REFRESH, GETANDREFRESH

Data Type

string

Default Value

"OFF"

Remarks

OAuth is an authorization framework that enables applications to obtain limited access to user accounts on an HTTP service. The OAuth flow defines the method to be used for:

  • Logging in users.
  • Exchanging user credentials for an OAuth access token to be used for authentication.
  • Providing limited access to applications.

The options for initiating and maintaining OAuth access are named for the parts of that flow that the connector handles:

OFF The connector provides no automatic OAuth flow initiation. The OAuth flow is handled entirely by the user.
This means that the user must refresh the token manually, and reconnect with an updated OAuthAccessToken property when the current token expires.
GETANDREFRESH The connector handles the entire OAuth flow (both GET and REFRESH). This means that if a token already exists, the connector refreshes it when necessary; if no token currently exists, the connector obtains it by prompting the user to login.
REFRESH The user obtains the OAuth Access Token and sets up the sequence for refreshing the OAuth Access Token. (The user is never prompted to log in to authenticate.) After the user logs in, the connector handles the refresh of the OAuth Access Token.

For more information on how to set up OAuth and use this property when configuring a connection, see Establishing a Connection.

CData Python Connector for BigCommerce

OAuthClientId

Specifies the client ID (also known as the consumer key) assigned to your custom OAuth application. This ID is required to identify the application to the OAuth authorization server during authentication.

Data Type

string

Default Value

""

Remarks

This property is required in two cases:

  • When using a custom OAuth application, such as in web-based authentication flows, service-based authentication, or certificate-based flows that require application registration.
  • If the driver does not provide embedded OAuth credentials.

(When the driver provides embedded OAuth credentials, this value may already be provided by the connector and thus not require manual entry.)

OAuthClientId is generally used alongside other OAuth-related properties such as OAuthClientSecret and OAuthSettingsLocation when configuring an authenticated connection.

OAuthClientId is one of the key connection parameters that need to be set before users can authenticate via OAuth. You can usually find this value in your identity provider’s application registration settings. Look for a field labeled Client ID, Application ID, or Consumer Key.

While the client ID is not considered a confidential value like a client secret, it is still part of your application's identity and should be handled carefully. Avoid exposing it in public repositories or shared configuration files.

For more information on how this property is used when configuring a connection, see Establishing a Connection.

CData Python Connector for BigCommerce

OAuthClientSecret

Specifies the client secret assigned to your custom OAuth application. This confidential value is used to authenticate the application to the OAuth authorization server. (Custom OAuth applications only.).

Data Type

string

Default Value

""

Remarks

This property (sometimes called the application secret or consumer secret) is required when using a custom OAuth application in any flow that requires secure client authentication, such as web-based OAuth, service-based connections, or certificate-based authorization flows. It is not required when using an embedded OAuth application.

The client secret is used during the token exchange step of the OAuth flow, when the driver requests an access token from the authorization server. If this value is missing or incorrect, authentication fails with either an invalid_client or an unauthorized_client error.

OAuthClientSecret is one of the key connection parameters that need to be set before users can authenticate via OAuth. You can obtain this value from your identity provider when registering the OAuth application.

Notes:

  • This value should be stored securely and never exposed in public repositories, scripts, or unsecured environments.
  • Client secrets may also expire after a set period. Be sure to monitor expiration dates and rotate secrets as needed to maintain uninterrupted access.

For more information on how this property is used when configuring a connection, see Establishing a Connection

CData Python Connector for BigCommerce

OAuthAccessToken

Specifies the OAuth access token used to authenticate requests to the data source. This token is issued by the authorization server after a successful OAuth exchange.

Data Type

string

Default Value

""

Remarks

OAuthAccessToken is a temporary credential that authorizes access to protected resources. It is typically returned by the identity provider after the user or client application completes an OAuth authentication flow. This property is most commonly used in automated workflows or custom OAuth implementations where you want to manage token handling outside of the driver.

The OAuth access token has a server-dependent timeout, limiting user access. The timeout is set using the OAuthExpiresIn property. However, it can be reissued between requests to keep access alive as long as the user keeps working.

If InitiateOAuth is set to REFRESH, we recommend that you also set both OAuthExpiresIn and OAuthTokenTimestamp. The connector uses these properties to determine when the token expires so it can refresh most efficiently. If OAuthExpiresIn and OAuthTokenTimestamp are not specified, the connector refreshes the token immediately.

Note: Access tokens should be treated as sensitive credentials and stored securely. Avoid exposing them in logs, scripts, or configuration files that are not access-controlled.

For more information on how this property is used when configuring a connection, see Establishing a Connection.

CData Python Connector for BigCommerce

OAuthSettingsLocation

Specifies the location of the settings file where OAuth values are saved.

Data Type

string

Default Value

"%APPDATA%\\CData\\BigCommerce Data Provider\\OAuthSettings.txt"

Remarks

Storing OAuth settings in a central location avoids the need for users to enter OAuth connection properties manually each time they log in. It also enables credentials to be shared across connections or processes.

You can store OAuth values in a central file for shared access to those values, in either of the following ways:

  • Set InitiateOAuth to either GETANDREFRESH or REFRESH and specify a filepath to the OAuth settings file.
  • Use memory storage to load the credentials into static memory.

The following sections provide more detail on each of these methods.

Specifying the OAuthSettingsLocation Filepath

The default OAuth setting location is %APPDATA%\\CData\\BigCommerce Data Provider\\OAuthSettings.txt, with %APPDATA% set to the user's configuration directory. Default values vary, depending on the user's operating system.

  • Windows (ODBC and Power BI): registry://%DSN%
  • Windows: %APPDATA%CDataBigCommerce Data Provider\OAuthSettings.txt
  • Mac: %APPDATA%/CData/BigCommerce Data Provider/OAuthSettings.txt
  • Linux: %APPDATA%/CData/BigCommerce Data Provider/OAuthSettings.txt

Loading Credentials Via Memory Storage

Memory locations are specified by using a value starting with memory://, followed by a unique identifier for that set of credentials (for example, memory://user1). The identifier can be anything you choose, but it should be unique to the user.

Unlike file-based storage, where credentials persist across connections, memory storage loads the credentials into static memory and the credentials are shared between connections using the same identifier for the life of the process. To persist credentials outside the current process, you must manually store the credentials prior to closing the connection. This enables you to set them in the connection when the process is started again.

To retrieve OAuth property values, query the sys_connection_props system table. If there are multiple connections using the same credentials, the properties are read from the previously closed connection.

Supported Storage Types

  • memory://: Stores OAuth tokens in-memory (unique identifier, shared within same process, etc.)
  • registry://: Only supported in the Windows ODBC and Power BI editions. Stores OAuth tokens in the registry under the DSN settings. Must end in a DSN name like registry://CData Python Connector for BigCommerce Data Source, or registry://%DSN%.
  • %DSN%: The name of the DSN you are connecting with.
  • Default (no prefix): Stores OAuth tokens within files. The value can be either an absolute path, or a path starting with %APPDATA% or %PROGRAMFILES%.

For more information on how this property is used when configuring a connection, see Establishing a Connection.

CData Python Connector for BigCommerce

CallbackURL

Identifies the URL users return to after authenticating to BigCommerce via OAuth (Custom OAuth applications only).

Data Type

string

Default Value

"http://localhost:33333"

Remarks

If you created a custom OAuth application, the OAuth authorization server redirects the user to this URL during the authentication process. This value must match the callback URL you specified when you configured the custom OAuth application.

CData Python Connector for BigCommerce

Scope

Specifies the scope of the authenticating user's access to the application, to ensure they get appropriate access to data. If a custom OAuth application is needed, this is generally specified at the time the application is created.

Data Type

string

Default Value

""

Remarks

Scopes are set to define what kind of access the authenticating user will have; for example, read, read and write, restricted access to sensitive information. System administrators can use scopes to selectively enable access by functionality or security clearance.

When InitiateOAuth is set to GETANDREFRESH, you must use this property if you want to change which scopes are requested.

When InitiateOAuth is set to either REFRESH or OFF, you can change which scopes are requested using either this property or the Scope input.

CData Python Connector for BigCommerce

OAuthVerifier

Specifies a verifier code returned from the OAuthAuthorizationURL . Used when authenticating to OAuth on a headless server, where a browser can't be launched. Requires both OAuthSettingsLocation and OAuthVerifier to be set.

Data Type

string

Default Value

""

Remarks

For detailed instructions about how to obtain the OAuthVerifier value, see Establishing a Connection.

CData Python Connector for BigCommerce

OAuthExpiresIn

Specifies the duration in seconds, of an OAuth Access Token's lifetime. The token can be reissued to keep access alive as long as the user keeps working.

Data Type

string

Default Value

""

Remarks

The OAuth Access Token is assigned to an authenticated user, granting that user access to the network for a specified period of time. The access token is used in place of the user's login ID and password, which stay on the server.

An access token created by the server is only valid for a limited time. OAuthExpiresIn is the number of seconds the token is valid from when it was created. For example, a token generated at 2024-01-29 20:00:00 UTC that expires at 2024-01-29 21:00:00 UTC (an hour later) would have an OAuthExpiresIn value of 3600, no matter what the current time is.

To determine how long the user has before the Access Token will expire, check OAuthTokenTimestamp.

CData Python Connector for BigCommerce

OAuthTokenTimestamp

Displays a Unix epoch timestamp in milliseconds that shows how long ago the current access token was created.

Data Type

string

Default Value

""

Remarks

The OAuth access token is assigned to an authenticated user, granting that user access to the network for a specified period of time. The access token is used in place of the user's login ID and password, which stay on the server.

An access token created by the server is only valid for a limited time. OAuthTokenTimestamp is the Unix timestamp when the server created the token. For example, OAuthTokenTimestamp=1706558400 indicates the OAuthAccessToken was generated by the server at 2024-01-29 20:00:00 UTC.

CData Python Connector for BigCommerce

SSL

This section provides a complete list of the SSL properties you can configure in the connection string for this provider.


PropertyDescription
SSLServerCertSpecifies the certificate to be accepted from the server when connecting using TLS/SSL.
CData Python Connector for BigCommerce

SSLServerCert

Specifies the certificate to be accepted from the server when connecting using TLS/SSL.

Data Type

string

Default Value

""

Remarks

If you are using a TLS/SSL connection, use this property to specify the TLS/SSL certificate to be accepted from the server. If you specify a value for this property, all other certificates that are not trusted by the machine are rejected.

This property can take the following forms:

Description Example
A full PEM Certificate (example shortened for brevity) -----BEGIN CERTIFICATE-----
MIIChTCCAe4CAQAwDQYJKoZIhv......Qw==
-----END CERTIFICATE-----
A path to a local file containing the certificate C:\cert.cer
The public key (example shortened for brevity) -----BEGIN RSA PUBLIC KEY-----
MIGfMA0GCSq......AQAB
-----END RSA PUBLIC KEY-----
The MD5 Thumbprint (hex values can also be either space- or colon-separated) ecadbdda5a1529c58a1e9e09828d70e4
The SHA1 Thumbprint (hex values can also be either space- or colon-separated) 34a929226ae0819f2ec14b4a3d904f801cbb150d

Note: It is possible to use '*' to signify that all certificates should be accepted, but due to security concerns this is not recommended.

CData Python Connector for BigCommerce

Firewall

This section provides a complete list of the Firewall properties you can configure in the connection string for this provider.


PropertyDescription
FirewallTypeSpecifies the protocol the provider uses to tunnel traffic through a proxy-based firewall.
FirewallServerIdentifies the IP address, DNS name, or host name of a proxy used to traverse a firewall and relay user queries to network resources.
FirewallPortSpecifies the TCP port to be used for a proxy-based firewall.
FirewallUserIdentifies the user ID of the account authenticating to a proxy-based firewall.
FirewallPasswordSpecifies the password of the user account authenticating to a proxy-based firewall.
CData Python Connector for BigCommerce

FirewallType

Specifies the protocol the provider uses to tunnel traffic through a proxy-based firewall.

Possible Values

NONE, TUNNEL, SOCKS4, SOCKS5

Data Type

string

Default Value

"NONE"

Remarks

A proxy-based firewall (or proxy firewall) is a network security device that acts as an intermediary between user requests and the resources they access. The proxy accepts the request of an authenticated user, tunnels through the firewall, and transmits the request to the appropriate server.

Because the proxy evaluates and transfers data backets on behalf of the requesting users, the users never connect directly with the servers, only with the proxy.

Note: By default, the connector connects to the system proxy. To disable this behavior and connect to one of the following proxy types, set ProxyAutoDetect to false.

The following table provides port number information for each of the supported protocols.

Protocol Default Port Description
TUNNEL 80 The port where the connector opens a connection to BigCommerce. Traffic flows back and forth via the proxy at this location.
SOCKS4 1080 The port where the connector opens a connection to BigCommerce. SOCKS 4 then passes theFirewallUser value to the proxy, which determines whether the connection request should be granted.
SOCKS5 1080 The port where the connector sends data to BigCommerce. If the SOCKS 5 proxy requires authentication, set FirewallUser and FirewallPassword to credentials the proxy recognizes.

To connect to HTTP proxies, use ProxyServer and ProxyPort. To authenticate to HTTP proxies, use ProxyAuthScheme, ProxyUser, and ProxyPassword.

CData Python Connector for BigCommerce

FirewallServer

Identifies the IP address, DNS name, or host name of a proxy used to traverse a firewall and relay user queries to network resources.

Data Type

string

Default Value

""

Remarks

A proxy-based firewall (or proxy firewall) is a network security device that acts as an intermediary between user requests and the resources they access. The proxy accepts the request of an authenticated user, tunnels through the firewall, and transmits the request to the appropriate server.

Because the proxy evaluates and transfers data backets on behalf of the requesting users, the users never connect directly with the servers, only with the proxy.

CData Python Connector for BigCommerce

FirewallPort

Specifies the TCP port to be used for a proxy-based firewall.

Data Type

int

Default Value

0

Remarks

A proxy-based firewall (or proxy firewall) is a network security device that acts as an intermediary between user requests and the resources they access. The proxy accepts the request of an authenticated user, tunnels through the firewall, and transmits the request to the appropriate server.

Because the proxy evaluates and transfers data backets on behalf of the requesting users, the users never connect directly with the servers, only with the proxy.

CData Python Connector for BigCommerce

FirewallUser

Identifies the user ID of the account authenticating to a proxy-based firewall.

Data Type

string

Default Value

""

Remarks

A proxy-based firewall (or proxy firewall) is a network security device that acts as an intermediary between user requests and the resources they access. The proxy accepts the request of an authenticated user, tunnels through the firewall, and transmits the request to the appropriate server.

Because the proxy evaluates and transfers data backets on behalf of the requesting users, the users never connect directly with the servers, only with the proxy.

CData Python Connector for BigCommerce

FirewallPassword

Specifies the password of the user account authenticating to a proxy-based firewall.

Data Type

string

Default Value

""

Remarks

A proxy-based firewall (or proxy firewall) is a network security device that acts as an intermediary between user requests and the resources they access. The proxy accepts the request of an authenticated user, tunnels through the firewall, and transmits the request to the appropriate server.

Because the proxy evaluates and transfers data backets on behalf of the requesting users, the users never connect directly with the servers, only with the proxy.

CData Python Connector for BigCommerce

Proxy

This section provides a complete list of the Proxy properties you can configure in the connection string for this provider.


PropertyDescription
ProxyAutoDetectSpecifies whether the provider checks your system proxy settings for existing proxy server configurations, rather than using a manually specified proxy server.
ProxyServerIdentifies the hostname or IP address of the proxy server through which you want to route HTTP traffic.
ProxyPortIdentifies the TCP port on your specified proxy server that has been reserved for routing HTTP traffic to and from the client.
ProxyAuthSchemeSpecifies the authentication method the provider uses when authenticating to the proxy server specified in the ProxyServer connection property.
ProxyUserProvides the username of a user account registered with the proxy server specified in the ProxyServer connection property.
ProxyPasswordSpecifies the password of the user specified in the ProxyUser connection property.
ProxySSLTypeSpecifies the SSL type to use when connecting to the proxy server specified in the ProxyServer connection property.
ProxyExceptionsSpecifies a semicolon-separated list of destination hostnames or IPs that are exempt from connecting through the proxy server set in the ProxyServer connection property.
CData Python Connector for BigCommerce

ProxyAutoDetect

Specifies whether the provider checks your system proxy settings for existing proxy server configurations, rather than using a manually specified proxy server.

Data Type

bool

Default Value

true

Remarks

When this connection property is set to True, the connector checks your system proxy settings for existing proxy server configurations (no need to manually supply proxy server details).

This connection property takes precedence over other proxy settings. If you want to configure the connector to connect to a specific proxy server, set ProxyAutoDetect to False.

On Windows, the connector reads the proxy settings from the Internet Options in the registry, specifically the registry key HKCU\SOFTWARE\Microsoft\Windows\CurrentVersion\Internet Settings\. On Windows 10 and later, this corresponds to the Proxy Settings found in the Windows Settings.

Note that these settings apply only to the current user of the machine. If you're running an application as a service, the connector does not read your own user's settings. You must instead manually supply the proxy settings in the connector's connection properties.

On Mac, the connector reads proxy settings from the system-configured CFNetwork settings.

On Linux, this property is unsupported, and is set to False by default.

To connect to an HTTP proxy, see ProxyServer. For other proxies, such as SOCKS or tunneling, see FirewallType.

CData Python Connector for BigCommerce

ProxyServer

Identifies the hostname or IP address of the proxy server through which you want to route HTTP traffic.

Data Type

string

Default Value

""

Remarks

The connector only routes HTTP traffic through the proxy server specified in this connection property when ProxyAutoDetect is set to False.

If ProxyAutoDetect is set to True (the default), the connector instead routes HTTP traffic through the proxy server specified in your system proxy settings.

CData Python Connector for BigCommerce

ProxyPort

Identifies the TCP port on your specified proxy server that has been reserved for routing HTTP traffic to and from the client.

Data Type

int

Default Value

80

Remarks

The connector only routes HTTP traffic through the ProxyServer port specified in this connection property when ProxyAutoDetect is set to False.

If ProxyAutoDetect is set to True (the default), the connector instead routes HTTP traffic through the proxy server port specified in your system proxy settings.

For other proxy types, see FirewallType.

CData Python Connector for BigCommerce

ProxyAuthScheme

Specifies the authentication method the provider uses when authenticating to the proxy server specified in the ProxyServer connection property.

Possible Values

BASIC, DIGEST, NONE, NEGOTIATE, NTLM

Data Type

string

Default Value

"BASIC"

Remarks

Note: The connector only uses this ProxyAuthScheme when ProxyAutoDetect is set to False. If ProxyAutoDetect is set to True (the default), the connector instead uses the authentication method specified in your system proxy settings.

Supported authentication types :

  • BASIC: The connector performs HTTP basic authentication.
  • DIGEST: The connector performs HTTP digest authentication.
  • NTLM: The connector retrieves an NTLM token.
  • NEGOTIATE: The connector retrieves an NTLM or Kerberos token based on the applicable protocol for authentication.
  • NONE: Signifies that the ProxyServer does not require authentication.

For all values other than NONE, you must also set the ProxyUser and ProxyPassword connection properties.

If you need to use another authentication type, such as SOCKS 5 authentication, see FirewallType.

CData Python Connector for BigCommerce

ProxyUser

Provides the username of a user account registered with the proxy server specified in the ProxyServer connection property.

Data Type

string

Default Value

""

Remarks

The ProxyUser and ProxyPassword connection properties are used to connect and authenticate against the HTTP proxy specified in ProxyServer.

After selecting one of the available authentication types in ProxyAuthScheme, set this property as follows:

ProxyAuthScheme Value Value to set for ProxyUser
BASIC The username of a user registered with the proxy server.
DIGEST The username of a user registered with the proxy server.
NEGOTIATE The username of a Windows user who is a valid user in the domain or trusted domain that the proxy server is part of, in the format user@domain or domain\user.
NTLM The username of a Windows user who is a valid user in the domain or trusted domain that the proxy server is part of, in the format user@domain or domain\user.
NONE Do not set the ProxyPassword connection property.

Note: The connector only uses this username if ProxyAutoDetect is set to False. If ProxyAutoDetect is set to True (the default), the connector instead uses the username specified in your system proxy settings.

CData Python Connector for BigCommerce

ProxyPassword

Specifies the password of the user specified in the ProxyUser connection property.

Data Type

string

Default Value

""

Remarks

The ProxyUser and ProxyPassword connection properties are used to connect and authenticate against the HTTP proxy specified in ProxyServer.

After selecting one of the available authentication types in ProxyAuthScheme, set this property as follows:

ProxyAuthScheme Value Value to set for ProxyPassword
BASIC The password associated with the proxy server user specified in ProxyUser.
DIGEST The password associated with the proxy server user specified in ProxyUser.
NEGOTIATE The password associated with the Windows user account specified in ProxyUser.
NTLM The password associated with the Windows user account specified in ProxyUser.
NONE Do not set the ProxyPassword connection property.

For SOCKS 5 authentication or tunneling, see FirewallType.

Note: The connector only uses this password if ProxyAutoDetect is set to False. If ProxyAutoDetect is set to True (the default), the connector instead uses the password specified in your system proxy settings.

CData Python Connector for BigCommerce

ProxySSLType

Specifies the SSL type to use when connecting to the proxy server specified in the ProxyServer connection property.

Possible Values

AUTO, ALWAYS, NEVER, TUNNEL

Data Type

string

Default Value

"AUTO"

Remarks

This property determines when to use SSL for the connection to the HTTP proxy specified by ProxyServer. You can set this connection property to the following values :

AUTODefault setting. If ProxyServer is set to an HTTPS URL, the connector uses the TUNNEL option. If ProxyServer is set to an HTTP URL, the component uses the NEVER option.
ALWAYSThe connection is always SSL enabled.
NEVERThe connection is not SSL enabled.
TUNNELThe connection is made through a tunneling proxy. The proxy server opens a connection to the remote host and traffic flows back and forth through the proxy.

CData Python Connector for BigCommerce

ProxyExceptions

Specifies a semicolon-separated list of destination hostnames or IPs that are exempt from connecting through the proxy server set in the ProxyServer connection property.

Data Type

string

Default Value

""

Remarks

The ProxyServer is used for all addresses, except for addresses defined in this property. Use semicolons to separate entries.

Note: The connector uses the system proxy settings by default, without further configuration needed. If you want to explicitly configure proxy exceptions for this connection, set ProxyAutoDetect to False.

CData Python Connector for BigCommerce

Logging

This section provides a complete list of the Logging properties you can configure in the connection string for this provider.


PropertyDescription
LogfileSpecifies the file path to the log file where the provider records its activities, such as authentication, query execution, and connection details.
VerbositySpecifies the verbosity level of the log file, which controls the amount of detail logged. Supported values range from 1 to 5.
LogModulesSpecifies the core modules to include in the log file. Use a semicolon-separated list of module names. By default, all modules are logged.
MaxLogFileSizeSpecifies the maximum size of a single log file in bytes. For example, '10 MB'. When the file reaches the limit, the provider creates a new log file with the date and time appended to the name.
MaxLogFileCountSpecifies the maximum number of log files the provider retains. When the limit is reached, the oldest log file is deleted to make space for a new one.
CData Python Connector for BigCommerce

Logfile

Specifies the file path to the log file where the provider records its activities, such as authentication, query execution, and connection details.

Data Type

string

Default Value

""

Remarks

This property specifies the location and name of the log file where the connector records its operations, including authentication events, query execution, and connection details. If the specified file does not exist, the connector creates it. Ensure that the user or the service running the connector has write access to the specified path or file. Without sufficient permissions, the log file is not created.

Sensitive information from the connection string, such as passwords and tokens, is automatically masked in the logs. However, sensitive information present in the data itself may not be masked.

If you specify a relative path for Logfile, and if the Location property is set, that directory is used as the base path for the log file.

Additional properties allow you to customize logging behavior:

CData Python Connector for BigCommerce

Verbosity

Specifies the verbosity level of the log file, which controls the amount of detail logged. Supported values range from 1 to 5.

Data Type

string

Default Value

"1"

Remarks

This property defines the level of detail the connector includes in the log file. Higher verbosity levels increase the detail of the logged information, but may also result in larger log files and slower performance due to the additional data being captured.

The default verbosity level is 1, which is recommended for regular operation. Higher verbosity levels are primarily intended for debugging purposes. For more information on each level, refer to Logging.

When combined with the LogModules property, Verbosity can refine logging to specific categories of information.

CData Python Connector for BigCommerce

LogModules

Specifies the core modules to include in the log file. Use a semicolon-separated list of module names. By default, all modules are logged.

Data Type

string

Default Value

""

Remarks

The connector writes details about each operation it performs into the logfile specified by the Logfile connection property.

Each of these logged operations are assigned to a themed category called a module, and each module has a corresponding short code used to labels individual connector operations as belonging to that module.

When this connection property is set to a semicolon-separated list of module codes, only operations belonging to the specified modules are written to the logfile. Note that this only affects which operations are logged moving forward and doesn't retroactively alter the existing contents of the logfile. For example: INFO;EXEC;SSL;META;

By default, logged operations from all modules are included.

You can explicitly exclude a module by prefixing it with a "-". For example: -HTTP

To apply filters to submodules, identify them with the syntax <module name>.<submodule name>. For example, the following value causes the connector to only log actions belonging to the HTTP module, and further refines it to exclude actions belonging to the Res submodule of the HTTP module: HTTP;-HTTP.Res

Note that the logfile filtering triggered by the Verbosity connection property takes precedence over the filtering imposed by this connection property. This means that operations of a higher verbosity level than the level specified in the Verbosity connection property are not printed in the logfile, even if they belong to one of the modules specified in this connection property.

The available modules and submodules are:

Module Name Module Description Submodules
INFO General Information. Includes the connection string, product version (build number), and initial connection messages.
  • Connec – Information related to creating or destroying connections.
  • Messag – Generic label for messages pertaining to connections, the connection string, and product version. These messages are typically specific to the connector, rather than being received and passed along directly from the service.
EXEC Query Execution. Includes execution messages for user-written SQL queries, parsed SQL queries, and normalized SQL queries. Success/failure messages for queries and query pages appear here as well.
  • Messag – Messages pertaining to query execution. These messages are typically specific to the connector, rather than being received and passed along directly from the service.
  • Normlz – Query normalization steps. Query normalization is when the product takes the user-submitted query and rewrites the query to get the same results with optimal performance.
  • Origin – This label applies to any messages recording a user's original query (the exact, unaltered, non-normalized query executed by the user).
  • Page – Messages related to query paging.
  • Parsed – Query parsing steps. Parsing is the process of converting the user-submitted query into a standardized format for easier processing.
HTTP HTTP protocol messages. Includes HTTP requests/responses (including POST messages), as well as Kerberos related messages.
  • KERB – HTTP requests related to Kerberos.
  • Messag – Messages pertaining to HTTP protocols. These messages are typically specific to the connector, rather than being received and passed along directly from the service.
  • Unpack – This label applies to messages about zipped data being returned from the service API and unpacked by the product.
  • Res – Messages containing HTTP responses.
  • Req – Messages containing HTTP requests.
WSDL Messages pertaining to the generation of WSDL/XSD files.
SSL SSL certificate messages.
  • Certif – Messages pertaining to SSL certificates.
AUTH Authentication related failure/success messages.
  • Messag – Messages pertaining to authentication. These messages are typically specific to the connector, rather than being received and passed along directly from the service.
  • OAuth – Messages related to OAuth authentication.
  • Krbros – Kerberos-related authentication messages.
SQL Includes SQL transactions, SQL bulk transfer messages, and SQL result set messages.
  • Bulk – Messages pertaining to bulk query execution.
  • Cache – Messages related to reading row data from and writing row data to the product's cache for better performance.
  • Messag – Messages pertaining to SQL transactions. These messages are typically specific to the connector, rather than being received and passed along directly from the service.
  • ResSet – Query resultsets.
  • Transc – Messages related to handling transactions, including information about the number of jobs executed and backup table handling.
META Metadata cache and schema messages.
  • Cache – Messages related to reading from and modifying column and table definitions in the product's cache for better performance.
  • Schema – Messages related to retrieving metadata from or modifying the service schema.
  • MemSto – Messages related to writing to or reading from in-memory metadata cache.
  • Storag – Messages relating to storing metadata on disk or in an external data store, rather than in memory.
FUNC Information related to executing SQL functions.
  • Errmsg – Error messages related to executing SQL functions.
TCP Incoming and outgoing raw bytes on TCP transport layer messages.
  • Send – Raw data sent via the TCP protocol.
  • Receiv – Raw data received via the TCP protocol.
FTP Messages pertaining to the File Transfer Protocol.
  • Info – Status messages related to communication in the FTP protocol.
  • Client – Messages related to actions taken by the FTP client (the product) during FTP communication.
  • Server – Messages related to actions taken by the FTP server during FTP communication.
SFTP Messages pertaining to the Secure File Transfer Protocol.
  • Info – Status messages related to communication in the SFTP protocol.
  • To_Server – Messages related to actions taken by the SFTP client (the product) during SFTP communication.
  • From_Server – Messages related to actions taken by the SFTP server during SFTP communication.
POP Messages pertaining to data transferred via the Post Office Protocol.
  • Client – Messages related to actions taken by the POP client (the product) during POP communication.
  • Server – Messages related to actions taken by the POP server during POP communication.
  • Status – Status messages related to communication in the POP protocol.
SMTP Messages pertaining to data transferred via the Simple Mail Transfer Protocol.
  • Client – Messages related to actions taken by the SMTP client (the product) during SMTP communication.
  • Server – Messages related to actions taken by the SMTP server during SMTP communication.
  • Status – Status messages related to communication in the SMTP protocol.
CORE Messages relating to various internal product operations not covered by other modules.
DEMN Messages related to SQL remoting.
CLJB Messages about bulk data uploads (cloud job).
  • Commit – Submissions for bulk data uploads.
SRCE Miscellaneous messages produced by the product that don't belong in any other module.
TRANCE Advanced messages concerning low-level product operations.

CData Python Connector for BigCommerce

MaxLogFileSize

Specifies the maximum size of a single log file in bytes. For example, '10 MB'. When the file reaches the limit, the provider creates a new log file with the date and time appended to the name.

Data Type

string

Default Value

"100MB"

Remarks

For values lower than 100 KB, the connector uses 100 KB as the minimum allowable size.

To control the total number of log files retained, use the MaxLogFileCount property in conjunction with this property. Together, these properties allow you to manage the size and retention of log files effectively.

CData Python Connector for BigCommerce

MaxLogFileCount

Specifies the maximum number of log files the provider retains. When the limit is reached, the oldest log file is deleted to make space for a new one.

Data Type

int

Default Value

-1

Remarks

Each log file name includes the date and time for easier identification.

This property accepts the following values:

  • A value of 2 or higher sets the maximum number of log files retained.
  • A value of 1 retains only one log file. When it reaches the maximum size, the file is deleted and replaced by a new one, leaving no history beyond the current log.
  • A value of 0 or negative indicates no limit on the number of log files, and logging continues indefinitely.

To manage log file size, use the MaxLogFileSize property. The two properties work together to control the size and retention of log files in the logging folder.

CData Python Connector for BigCommerce

Schema

This section provides a complete list of the Schema properties you can configure in the connection string for this provider.


PropertyDescription
LocationSpecifies the location of a directory containing schema files that define tables, views, and stored procedures. Depending on your service's requirements, this may be expressed as either an absolute path or a relative path.
BrowsableSchemasOptional setting that restricts the schemas reported to a subset of all available schemas. For example, BrowsableSchemas=SchemaA,SchemaB,SchemaC .
TablesOptional setting that restricts the tables reported to a subset of all available tables. For example, Tables=TableA,TableB,TableC .
ViewsOptional setting that restricts the views reported to a subset of the available tables. For example, Views=ViewA,ViewB,ViewC .
CData Python Connector for BigCommerce

Location

Specifies the location of a directory containing schema files that define tables, views, and stored procedures. Depending on your service's requirements, this may be expressed as either an absolute path or a relative path.

Data Type

string

Default Value

"%APPDATA%\\CData\\BigCommerce Data Provider\\Schema"

Remarks

The Location property is only needed if you want to either customize definitions (for example, change a column name, ignore a column, etc.) or extend the data model with new tables, views, or stored procedures.

If left unspecified, the default location is %APPDATA%\\CData\\BigCommerce Data Provider\\Schema, where %APPDATA% is set to the user's configuration directory:

Platform %APPDATA%
Windows The value of the APPDATA environment variable
Linux ~/.config

CData Python Connector for BigCommerce

BrowsableSchemas

Optional setting that restricts the schemas reported to a subset of all available schemas. For example, BrowsableSchemas=SchemaA,SchemaB,SchemaC .

Data Type

string

Default Value

""

Remarks

Listing all available database schemas can take extra time, thus degrading performance. Providing a list of schemas in the connection string saves time and improves performance.

CData Python Connector for BigCommerce

Tables

Optional setting that restricts the tables reported to a subset of all available tables. For example, Tables=TableA,TableB,TableC .

Data Type

string

Default Value

""

Remarks

Listing all available tables from some databases can take extra time, thus degrading performance. Providing a list of tables in the connection string saves time and improves performance.

If there are lots of tables available and you already know which ones you want to work with, you can use this property to restrict your viewing to only those tables. To do this, specify the tables you want in a comma-separated list. Each table should be a valid SQL identifier with any special characters escaped using square brackets, double-quotes or backticks. For example, Tables=TableA,[TableB/WithSlash],WithCatalog.WithSchema.`TableC With Space`.

Note: If you are connecting to a data source with multiple schemas or catalogs, you must specify each table you want to view by its fully qualified name. This avoids ambiguity between tables that may exist in multiple catalogs or schemas.

CData Python Connector for BigCommerce

Views

Optional setting that restricts the views reported to a subset of the available tables. For example, Views=ViewA,ViewB,ViewC .

Data Type

string

Default Value

""

Remarks

Listing all available views from some databases can take extra time, thus degrading performance. Providing a list of views in the connection string saves time and improves performance.

If there are lots of views available and you already know which ones you want to work with, you can use this property to restrict your viewing to only those views. To do this, specify the views you want in a comma-separated list. Each view should be a valid SQL identifier with any special characters escaped using square brackets, double-quotes or backticks. For example, Views=ViewA,[ViewB/WithSlash],WithCatalog.WithSchema.`ViewC With Space`.

Note: If you are connecting to a data source with multiple schemas or catalogs, you must specify each view you want to examine by its fully qualified name. This avoids ambiguity between views that may exist in multiple catalogs or schemas.

CData Python Connector for BigCommerce

Caching

This section provides a complete list of the Caching properties you can configure in the connection string for this provider.


PropertyDescription
AutoCacheSpecifies whether the content of tables targeted by SELECT queries is automatically cached to the specified cache database.
CacheProviderThe namespace of an ADO.NET provider. The specified provider is used as the target database for all caching operations.
CacheDriverThe driver class of a JDBC driver. The specified driver is used to connect to the target database for all caching operations.
CacheConnectionSpecifies the connection string for the specified cache database.
CacheLocationSpecifies the path to the cache when caching to a file.
CacheToleranceNotes the tolerance, in seconds, for stale data in the specified cache database. Requires AutoCache to be set to True.
OfflineGets the data from the specified cache database instead of live BigCommerce data.
CacheMetadataDetermines whether the provider caches table metadata to a file-based cache database.
CData Python Connector for BigCommerce

AutoCache

Specifies whether the content of tables targeted by SELECT queries is automatically cached to the specified cache database.

Data Type

bool

Default Value

false

Remarks

When this connection property is set to True, the connector automatically caches the contents of tables targeted by SELECT queries. The content of these tables is cached to the cache database specified by the CacheConnection and CacheProvider connection properties.

See Also

For additional information, see:

  • CacheMetadata: With CacheMetadata enabled, all retrieved metadata is mirrored in the cache database. This means that any subsequent attempts by the connector to discover metadata are much faster, as this metadata is then read directly from the cache database, without needing to spend time requesting metadata from BigCommerce.
  • Explicitly Caching Data: This topic provides examples for using AutoCache in Offline mode.
  • CACHE Statements: You can use the CACHE statement to explicitly cache the content of any table targeted by a SELECT query.

CData Python Connector for BigCommerce

CacheProvider

The namespace of an ADO.NET provider. The specified provider is used as the target database for all caching operations.

Data Type

string

Default Value

""

Remarks

You can cache to ADO.NET providers saved in your ADO.NET global assembly cache (GAC).

CData ADO.NET providers automatically register themselves with the GAC during installation, so you don't need to do so manually.

Third-party ADO.NET providers may or may not automatically register themselves with the GAC during installation. If you want to cache to a third-party ADO.NET provider, consult the documentation for that provider to determine what steps (if any) you must take to register them with the GAC. Once they have been registered, you can supply their namespace in this connection property.

You must also set the CacheConnection connection property to provide a connection string for the specified ADO.NET provider.

The following sections show connection examples and address other requirements for several popular database providers. Refer to CacheConnection for more information on typical connection properties.

SQLite

You can use the Microsoft ADO.NET Provider for SQLite to cache to SQLite databases.

CacheProvider=Microsoft.Data.Sqlite;CacheConnection='DataSource=C:\\Users\\Public\\cache.db;'AuthScheme=OAuth;InitiateOAuth=GETANDREFRESH;OAuthClientId=YourClientId;OAuthClientSecret=YourClientSecret;StoreId='YoUrSToREId';CallbackURL='http://localhost:33333'

MySQL

To cache to MySQL, you can use the CData ADO.NET Provider for MySQL:
Cache Provider=System.Data.CData.MySQL;Cache Connection='Server=localhost;Port=3306;Database=cache;User=root;Password=123456';User=myUser;Password=myPassword;Security Token=myToken;

SQL Server

You can use the Microsoft .NET Framework Provider for SQL Server, included in the .NET Framework, to cache to SQL Server:

Cache Provider=System.Data.SqlClient;Cache Connection="Server=MyMACHINE\MyInstance;Database=SQLCACHE;User Id=root;Password=admin";AuthScheme=OAuth;InitiateOAuth=GETANDREFRESH;OAuthClientId=YourClientId;OAuthClientSecret=YourClientSecret;StoreId='YoUrSToREId';CallbackURL='http://localhost:33333'

Oracle

To cache to Oracle, you can use the Oracle Data Provider for .NET, as shown in the following example:

Cache Provider=Oracle.DataAccess.Client;Cache Connection='User Id=scott;Password=tiger;Data Source=ORCL';AuthScheme=OAuth;InitiateOAuth=GETANDREFRESH;OAuthClientId=YourClientId;OAuthClientSecret=YourClientSecret;StoreId='YoUrSToREId';CallbackURL='http://localhost:33333'

The Oracle Data Provider for .NET also requires the Oracle Database Client. When you download the Oracle Database Client, ensure that its bitness matches the bitness of your machine. When you install, select either the Runtime or Administrator installation type. The Instant Client is not sufficient.

PostgreSQL

To cache to PostgreSQL, you can use the CData ADO.NET Provider for PostgreSQL:
Cache Provider=System.Data.CData.PostgreSQL;Cache Connection='Server=localhost;Port=5432;Database=cache;User=postgres;Password=123456';User=myUser;Password=myPassword;Security Token=myToken;

CData Python Connector for BigCommerce

CacheDriver

The driver class of a JDBC driver. The specified driver is used to connect to the target database for all caching operations.

Data Type

string

Default Value

""

Remarks

You can cache to any database for which you have a JDBC driver, including CData JDBC drivers.

Note: You must add the JAR file of the specified JDBC driver to the classpath. For CData JDBC drivers, you can find this JAR file in the "lib" subfolder of that driver's installation directory.

You must also set the CacheConnection connection property to provide a connection string for the specified JDBC driver.

For Linux systems and macOS, you need to create a config.ini file on the installation path of the driver (site-packages/cdata). The config.ini file has the following format (the driver and the path of the JDBC driver):

[salesforce.cpython-38-x86_64-linux-gnu.so]
CLASSPATH = /home/usrname/Downloads/lib/cdata.jdbc.postgresql.jar

Examples

The following examples show how to cache to several major databases. For more information on the JDBC URL syntax and typical connection properties, see CacheConnection.

Derby and Java DB

Java DB is the Oracle distribution of Derby. You must add the Derby JDBC driver's JAR file, derbytools.jar, to your classpath to cache to Java DB.

The Derby JDBC driver's JAR file is bundled in db-derby-10.17.1.0-bin.zip, which you can download from this page. You can find derbytools.jar in the "lib" subfolder of this zip file.

After adding derbytools.jar to the classpath, you can cache to a Java DB database as follows:

jdbc:bigcommerce:CacheDriver=org.apache.derby.jdbc.EmbeddedDriver;CacheConnection='jdbc:derby:sample';AuthScheme=OAuth;InitiateOAuth=GETANDREFRESH;OAuthClientId=YourClientId;OAuthClientSecret=YourClientSecret;StoreId='YoUrSToREId';CallbackURL='http://localhost:33333'
To cache to an in-memory database, use a JDBC URL like the following:
jdbc:bigcommerce:CacheDriver=org.apache.derby.jdbc.EmbeddedDriver;CacheConnection='jdbc:derby:memory';AuthScheme=OAuth;InitiateOAuth=GETANDREFRESH;OAuthClientId=YourClientId;OAuthClientSecret=YourClientSecret;StoreId='YoUrSToREId';CallbackURL='http://localhost:33333'

SQLite

The following is a JDBC URL for the SQLite JDBC driver:

jdbc:bigcommerce:CacheDriver=org.sqlite.JDBC;CacheConnection='jdbc:sqlite:C:/Temp/sqlite.db';AuthScheme=OAuth;InitiateOAuth=GETANDREFRESH;OAuthClientId=YourClientId;OAuthClientSecret=YourClientSecret;StoreId='YoUrSToREId';CallbackURL='http://localhost:33333'

MySQL

The following is a JDBC URL for the CData JDBC Driver for MySQL:

  jdbc:bigcommerce:Cache Driver=cdata.jdbc.mysql.MySQLDriver;Cache Connection='jdbc:mysql:Server=localhost;Port=3306;Database=cache;User=root;Password=123456';AuthScheme=OAuth;InitiateOAuth=GETANDREFRESH;OAuthClientId=YourClientId;OAuthClientSecret=YourClientSecret;StoreId='YoUrSToREId';CallbackURL='http://localhost:33333'
  

SQL Server

The following JDBC URL uses the Microsoft JDBC Driver for SQL Server:

jdbc:bigcommerce:Cache Driver=com.microsoft.sqlserver.jdbc.SQLServerDriver;Cache Connection='jdbc:sqlserver://localhost\sqlexpress:7437;user=sa;password=123456;databaseName=Cache';AuthScheme=OAuth;InitiateOAuth=GETANDREFRESH;OAuthClientId=YourClientId;OAuthClientSecret=YourClientSecret;StoreId='YoUrSToREId';CallbackURL='http://localhost:33333'

Oracle

The following is a JDBC URL for the Oracle Thin Client:

jdbc:bigcommerce:Cache Driver=oracle.jdbc.OracleDriver;CacheConnection='jdbc:oracle:thin:scott/tiger@localhost:1521:orcldb';AuthScheme=OAuth;InitiateOAuth=GETANDREFRESH;OAuthClientId=YourClientId;OAuthClientSecret=YourClientSecret;StoreId='YoUrSToREId';CallbackURL='http://localhost:33333'
NOTE: If using a version of Oracle older than 9i, the cache driver will instead be oracle.jdbc.driver.OracleDriver .

PostgreSQL

The following JDBC URL uses the official PostgreSQL JDBC driver:

jdbc:bigcommerce:CacheDriver=cdata.jdbc.postgresql.PostgreSQLDriver;CacheConnection='jdbc:postgresql:User=postgres;Password=admin;Database=postgres;Server=localhost;Port=5432;';AuthScheme=OAuth;InitiateOAuth=GETANDREFRESH;OAuthClientId=YourClientId;OAuthClientSecret=YourClientSecret;StoreId='YoUrSToREId';CallbackURL='http://localhost:33333'

CData Python Connector for BigCommerce

CacheConnection

Specifies the connection string for the specified cache database.

Data Type

string

Default Value

""

Remarks

The target cache database is determined by a combination of this connection property and the CacheProvider connection property. Both properties are required to use the specified cache database.

The connection string specified in this connection property is passed directly to the specified in the CacheProvider connection property. Consult the documentation for the specified for more information on its available connection properties.

Examples of common cache database settings can be found below.

SQLite

MySQL

The following are typical connection properties:

  • Server: The IP address or domain name of the server hosting the MySQL database that you want to cache to.
  • Port: The port on the specified server where your MySQL instance is running.
  • Database: The name of the MySQL database that you want to cache to. Must match the name of a MySQL database hosted on the specified server.
  • User: The username of a user registered with the selected MySQL database.
  • Password: The password associated with the specified MySQL user.

SQL Server

The following are typical SQL Server connection properties:

  • Server: The name or network address of the computer running SQL Server. To connect to a named instance instead of the default instance, specify the host name and the instance name, separated by a backslash.
  • Port: The port on the specified server where your SQL Server instance is running.
  • Database: The name of the SQL Server database you want to cache to. Must match the name of a SQL Server database hosted on the specified server.
  • Integrated Security: To use the current Windows account for authentication, set this option to True. To authenticate with User and Password instead, set this option to False.
  • User Id: The username of a user registered with the selected SQL Server database. This property is only needed if you are not using integrated security.
  • Password: The password associated with the specified SQL Server user. This property is only needed if you are not using integrated security.

Oracle

The following are typical connection properties:

  • Data Source: The connect descriptor that identifies the Oracle database. This can be a TNS connect descriptor, an Oracle Net Services name that resolves to a connect descriptor, or, after version 11g, an Easy Connect naming (the host name of the Oracle server with an optional port and service name).

  • User Id: The username of a user registered with the selected Oracle database.
  • Password: The password associated with the specified Oracle user.

PostgreSQL

The following are typical connection properties:

  • Host: The address of the server hosting the PostgreSQL database.
  • Port: The port on the specified host server where your PostgreSQL database is hosted.
  • Database: The name of the PostgreSQL database you want to cache to. Must match the name of a PostgreSQL database hosted on the specified server.
  • User name: The username of a user registered with the selected PostgreSQL database.
  • Password: The password associated with the specified user.

CData Python Connector for BigCommerce

CacheLocation

Specifies the path to the cache when caching to a file.

Data Type

string

Default Value

"%APPDATA%\\CData\\BigCommerce Data Provider"

Remarks

The CacheLocation is a simple, file-based cache.

If left unspecified, the default location is %APPDATA%\\CData\\BigCommerce Data Provider, where %APPDATA% is set to the user's configuration directory:

Platform %APPDATA%
Windows The value of the APPDATA environment variable
Linux ~/.config

See Also

  • AutoCache: Set to implicitly create and maintain a cache for later offline use.
  • CacheMetadata: Set to persist the BigCommerce catalog in CacheLocation.

CData Python Connector for BigCommerce

CacheTolerance

Notes the tolerance, in seconds, for stale data in the specified cache database. Requires AutoCache to be set to True.

Data Type

int

Default Value

600

Remarks

When you execute a query for tables in the cache, the connector checks the time elapsed since the last update to the cache.

If the last update to the cache is older than the value of this connection property (measured in seconds), the connector refreshes the cache.

Otherwise, the connector returns data directly from the cache.

CData Python Connector for BigCommerce

Offline

Gets the data from the specified cache database instead of live BigCommerce data.

Data Type

bool

Default Value

false

Remarks

When this connection property is set to True, all queries execute against the cache database instead of the live BigCommerce data.

In this mode, some SQL operations like INSERT, UPDATE, DELETE, and CACHE are disabled.

CData Python Connector for BigCommerce

CacheMetadata

Determines whether the provider caches table metadata to a file-based cache database.

Data Type

bool

Default Value

false

Remarks

When this connection property is set to True, as you execute queries, table metadata in the BigCommerce catalog is cached to the cache database specified by CacheConnection and CacheProvider, or, if those connection properties are not set, to the user's home directory.

The location of your home directory varies by platform:

PlatformHome Directory
Windows %APPDATA%\\CData\\BigCommerce Data Provider
Mac ~/Library/Application Support/CData/BigCommerce Data Provider
Unix ~/.config/CData/BigCommerce Data Provider

A table's metadata is retrieved only once, when the table is queried for the first time.

When to Use CacheMetadata

When there are a large number of BigCommerce tables and columns for the connector to retrieve during metadata discovery, the connector may take a while to list all table metadata.

You may experience slow metadata retrieval when:

  • Your BigCommerce instance naturally has a large table count.
  • The connector has been configured, via its connection properties, to discover more tables than it would under its default configuration.
  • You make many short-lived connections to the connector.
With CacheMetadata enabled, all retrieved metadata is mirrored in the cache database. This means that any subsequent attempts by the connector to discover metadata are much faster, as this metadata is then read directly from the cache database, without needing to spend time requesting metadata from BigCommerce.

When Not to Use CacheMetadata

The connector automatically persists metadata in memory for up to an hour when you first discover the metadata for a table or view, so CacheMetadata is generally not necessary.

CacheMetadata is not ideal in scenarios where you are working with volatile metadata. The first time you query a table, the connector caches its metadata to the cache database file. This cache is not dynamically updated to reflect updates to the table schema, so you must delete and rebuild the cache database file to pick up new, changed, or deleted columns.

CData Python Connector for BigCommerce

Miscellaneous

This section provides a complete list of the Miscellaneous properties you can configure in the connection string for this provider.


PropertyDescription
CustomFieldDiscoverySpecifies whether to merge customfields by name or create unique customfields by id to the Products table.
IncludeCustomFieldsA boolean indicating if you would like to include custom fields in the column listing.
MaxRowsSpecifies the maximum number of rows returned for queries that do not include either aggregation or GROUP BY.
OtherSpecifies advanced connection properties for specialized scenarios. Use this property only under the guidance of our Support team to address specific issues.
PseudoColumnsSpecifies the pseudocolumns to expose as table columns, expressed as a string in the format 'TableName=ColumnName;TableName=ColumnName'.
ReadonlyToggles read-only access to BigCommerce from the provider.
RowScanDepthThe maximum number of rows to scan to look for the columns available in a table.
RTKSpecifies the runtime key for licensing the provider. If unset or invalid, the provider defaults to the standard licensing method. This property is only required in environments where the standard licensing method is unsupported or requires a runtime key.
TimeoutSpecifies the maximum time, in seconds, that the provider waits for a server response before throwing a timeout error.
UserDefinedViewsSpecifies a filepath to a JSON configuration file that defines custom views. The provider automatically detects and uses the views specified in this file.
CData Python Connector for BigCommerce

CustomFieldDiscovery

Specifies whether to merge customfields by name or create unique customfields by id to the Products table.

Possible Values

ByID, ByName

Data Type

string

Default Value

"ByID"

Remarks

  • ByID: Set this when you want to create a unique customfields name by comparing the Ids of the custom fields. There are different customfields added for the various products as the customfields Id is unique across products.
  • ByName: Set this when you want to create customfields by name.

CData Python Connector for BigCommerce

IncludeCustomFields

A boolean indicating if you would like to include custom fields in the column listing.

Data Type

bool

Default Value

true

Remarks

Setting this to true will cause custom fields to be included in the column listing, but may cause poor performance when listing metadata.

CData Python Connector for BigCommerce

MaxRows

Specifies the maximum number of rows returned for queries that do not include either aggregation or GROUP BY.

Data Type

int

Default Value

-1

Remarks

The default value for this property, -1, means that no row limit is enforced unless the query explicitly includes a LIMIT clause. (When a query includes a LIMIT clause, the value specified in the query takes precedence over the MaxRows setting.)

Setting MaxRows to a whole number greater than 0 ensures that queries do not return excessively large result sets by default.

This property is useful for optimizing performance and preventing excessive resource consumption when executing queries that could otherwise return very large datasets.

CData Python Connector for BigCommerce

Other

Specifies advanced connection properties for specialized scenarios. Use this property only under the guidance of our Support team to address specific issues.

Data Type

string

Default Value

""

Remarks

This property allows advanced users to configure hidden properties for specialized situations, with the advice of our Support team. These settings are not required for normal use cases but can address unique requirements or provide additional functionality. To define multiple properties, use a semicolon-separated list.

Note: It is strongly recommended to set these properties only when advised by the Support team to address specific scenarios or issues.

Caching Configuration

PropertyDescription
CachePartial=TrueCaches only a subset of columns, which you can specify in your query.
QueryPassthrough=TruePasses the specified query to the cache database instead of using the SQL parser of the connector.

Integration and Formatting

PropertyDescription
DefaultColumnSizeSets the default length of string fields when the data source does not provide column length in the metadata. The default value is 2000.
ConvertDateTimeToGMT=TrueConverts date-time values to GMT, instead of the local time of the machine. The default value is False (use local time).
RecordToFile=filenameRecords the underlying socket data transfer to the specified file.

CData Python Connector for BigCommerce

PseudoColumns

Specifies the pseudocolumns to expose as table columns, expressed as a string in the format 'TableName=ColumnName;TableName=ColumnName'.

Data Type

string

Default Value

""

Remarks

This property allows you to define which pseudocolumns the connector exposes as table columns.

To specify individual pseudocolumns, use the following format:

Table1=Column1;Table1=Column2;Table2=Column3

To include all pseudocolumns for all tables use:

*=*

CData Python Connector for BigCommerce

Readonly

Toggles read-only access to BigCommerce from the provider.

Data Type

bool

Default Value

false

Remarks

When set to True, the connector allows only SELECT queries. Attempting an INSERT, UPDATE, DELETE, or stored procedure query fails with an error message.

CData Python Connector for BigCommerce

RowScanDepth

The maximum number of rows to scan to look for the columns available in a table.

Data Type

int

Default Value

100

Remarks

The columns in a table must be determined by scanning table rows. This value determines the maximum number of rows that will be scanned.

Setting a high value may decrease performance. Setting a low value may prevent the data type from being determined properly, especially when there is null data.

CData Python Connector for BigCommerce

RTK

Specifies the runtime key for licensing the provider. If unset or invalid, the provider defaults to the standard licensing method. This property is only required in environments where the standard licensing method is unsupported or requires a runtime key.

Data Type

string

Default Value

""

Remarks

This property is typically unnecessary, as most configurations support a standard licensing mechanism.

Warning: The value of this property takes precedence over all existing licensing information. To avoid licensing errors, ensure the provided runtime key is correct.

CData Python Connector for BigCommerce

Timeout

Specifies the maximum time, in seconds, that the provider waits for a server response before throwing a timeout error.

Data Type

int

Default Value

60

Remarks

The timeout applies to each individual communication with the server rather than the entire query or operation. For example, a query could continue running beyond 60 seconds if each paging call completes within the timeout limit.

Timeout is set to 60 seconds by default. To disable timeouts, set this property to 0.

Disabling the timeout allows operations to run indefinitely until they succeed or fail due to other conditions such as server-side timeouts, network interruptions, or resource limits on the server.

Note: Use this property cautiously to avoid long-running operations that could degrade performance or result in unresponsive behavior.

CData Python Connector for BigCommerce

UserDefinedViews

Specifies a filepath to a JSON configuration file that defines custom views. The provider automatically detects and uses the views specified in this file.

Data Type

string

Default Value

""

Remarks

UserDefinedViews allows you to define and manage custom views through a JSON-formatted configuration file called UserDefinedViews.json. These views are automatically recognized by the connector and enable you to execute custom SQL queries as if they were standard database views. The JSON file defines each view as a root element with a child element called "query", which contains the SQL query for the view.

For example:

{
	"MyView": {
		"query": "SELECT * FROM Customers WHERE MyColumn = 'value'"
	},
	"MyView2": {
		"query": "SELECT * FROM MyTable WHERE Id IN (1,2,3)"
	}
}

You can use this property to define multiple views in a single file and specify the filepath. For example:

UserDefinedViews=C:\Path\To\UserDefinedViews.json
When you specify a view in UserDefinedViews, the connector only sees that view.

For further information, see User Defined Views.

CData Python Connector for BigCommerce

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Each Contributor must identify itself as the originator of its Contribution, if any, in a manner that reasonably allows subsequent Recipients to identify the originator of the Contribution.

4. COMMERCIAL DISTRIBUTION

Commercial distributors of software may accept certain responsibilities with respect to end users, business partners and the like. While this license is intended to facilitate the commercial use of the Program, the Contributor who includes the Program in a commercial product offering should do so in a manner which does not create potential liability for other Contributors. Therefore, if a Contributor includes the Program in a commercial product offering, such Contributor ("Commercial Contributor") hereby agrees to defend and indemnify every other Contributor ("Indemnified Contributor") against any losses, damages and costs (collectively "Losses") arising from claims, lawsuits and other legal actions brought by a third party against the Indemnified Contributor to the extent caused by the acts or omissions of such Commercial Contributor in connection with its distribution of the Program in a commercial product offering. The obligations in this section do not apply to any claims or Losses relating to any actual or alleged intellectual property infringement. In order to qualify, an Indemnified Contributor must: a) promptly notify the Commercial Contributor in writing of such claim, and b) allow the Commercial Contributor to control, and cooperate with the Commercial Contributor in, the defense and any related settlement negotiations. The Indemnified Contributor may participate in any such claim at its own expense.

For example, a Contributor might include the Program in a commercial product offering, Product X. That Contributor is then a Commercial Contributor. If that Commercial Contributor then makes performance claims, or offers warranties related to Product X, those performance claims and warranties are such Commercial Contributor's responsibility alone. Under this section, the Commercial Contributor would have to defend claims against the other Contributors related to those performance claims and warranties, and if a court requires any other Contributor to pay any damages as a result, the Commercial Contributor must pay those damages.

5. NO WARRANTY

EXCEPT AS EXPRESSLY SET FORTH IN THIS AGREEMENT, THE PROGRAM IS PROVIDED ON AN "AS IS" BASIS, WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, EITHER EXPRESS OR IMPLIED INCLUDING, WITHOUT LIMITATION, ANY WARRANTIES OR CONDITIONS OF TITLE, NON-INFRINGEMENT, MERCHANTABILITY OR FITNESS FOR A PARTICULAR PURPOSE. Each Recipient is solely responsible for determining the appropriateness of using and distributing the Program and assumes all risks associated with its exercise of rights under this Agreement, including but not limited to the risks and costs of program errors, compliance with applicable laws, damage to or loss of data, programs or equipment, and unavailability or interruption of operations.

6. DISCLAIMER OF LIABILITY

EXCEPT AS EXPRESSLY SET FORTH IN THIS AGREEMENT, NEITHER RECIPIENT NOR ANY CONTRIBUTORS SHALL HAVE ANY LIABILITY FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING WITHOUT LIMITATION LOST PROFITS), HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OR DISTRIBUTION OF THE PROGRAM OR THE EXERCISE OF ANY RIGHTS GRANTED HEREUNDER, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGES.

7. GENERAL

If any provision of this Agreement is invalid or unenforceable under applicable law, it shall not affect the validity or enforceability of the remainder of the terms of this Agreement, and without further action by the parties hereto, such provision shall be reformed to the minimum extent necessary to make such provision valid and enforceable.

If Recipient institutes patent litigation against a Contributor with respect to a patent applicable to software (including a cross-claim or counterclaim in a lawsuit), then any patent licenses granted by that Contributor to such Recipient under this Agreement shall terminate as of the date such litigation is filed. In addition, if Recipient institutes patent litigation against any entity (including a cross-claim or counterclaim in a lawsuit) alleging that the Program itself (excluding combinations of the Program with other software or hardware) infringes such Recipient's patent(s), then such Recipient's rights granted under Section 2(b) shall terminate as of the date such litigation is filed.

All Recipient's rights under this Agreement shall terminate if it fails to comply with any of the material terms or conditions of this Agreement and does not cure such failure in a reasonable period of time after becoming aware of such noncompliance. If all Recipient's rights under this Agreement terminate, Recipient agrees to cease use and distribution of the Program as soon as reasonably practicable. However, Recipient's obligations under this Agreement and any licenses granted by Recipient relating to the Program shall continue and survive.

Everyone is permitted to copy and distribute copies of this Agreement, but in order to avoid inconsistency the Agreement is copyrighted and may only be modified in the following manner. The Agreement Steward reserves the right to publish new versions (including revisions) of this Agreement from time to time. No one other than the Agreement Steward has the right to modify this Agreement. IBM is the initial Agreement Steward. IBM may assign the responsibility to serve as the Agreement Steward to a suitable separate entity. Each new version of the Agreement will be given a distinguishing version number. The Program (including Contributions) may always be distributed subject to the version of the Agreement under which it was received. In addition, after a new version of the Agreement is published, Contributor may elect to distribute the Program (including its Contributions) under the new version. Except as expressly stated in Sections 2(a) and 2(b) above, Recipient receives no rights or licenses to the intellectual property of any Contributor under this Agreement, whether expressly, by implication, estoppel or otherwise. All rights in the Program not expressly granted under this Agreement are reserved.

This Agreement is governed by the laws of the State of New York and the intellectual property laws of the United States of America. No party to this Agreement will bring a legal action under this Agreement more than one year after the cause of action arose. Each party waives its rights to a jury trial in any resulting litigation.

AdoptOpenJDK / Adoptium Temurin JRE 17.0.18_8

Copyright (c) Eclipse Foundation AISBL. All Rights Reserved.

Apache License, Version 2.0

TERMS AND CONDITIONS FOR USE, REPRODUCTION, AND DISTRIBUTION

1. Definitions. "License" shall mean the terms and conditions for use, reproduction, and distribution as defined by Sections 1 through 9 of this document.

"Licensor" shall mean the copyright owner or entity authorized by the copyright owner that is granting the License.

"Legal Entity" shall mean the union of the acting entity and all other entities that control, are controlled by, or are under common control with that entity. For the purposes of this definition, "control" means (i) the power, direct or indirect, to cause the direction or management of such entity, whether by contract or otherwise, or (ii) ownership of fifty percent (50%) or more of the outstanding shares, or (iii) beneficial ownership of such entity.

"You" (or "Your") shall mean an individual or Legal Entity exercising permissions granted by this License.

"Source" form shall mean the preferred form for making modifications, including but not limited to software source code, documentation source, and configuration files.

"Object" form shall mean any form resulting from mechanical transformation or translation of a Source form, including but not limited to compiled object code, generated documentation, and conversions to other media types.

"Work" shall mean the work of authorship, whether in Source or Object form, made available under the License, as indicated by a copyright notice that is included in or attached to the work (an example is provided in the Appendix below).

"Derivative Works" shall mean any work, whether in Source or Object form, that is based on (or derived from) the Work and for which the editorial revisions, annotations, elaborations, or other modifications represent, as a whole, an original work of authorship. For the purposes of this License, Derivative Works shall not include works that remain separable from, or merely link (or bind by name) to the interfaces of, the Work and Derivative Works thereof.

"Contribution" shall mean any work of authorship, including the original version of the Work and any modifications or additions to that Work or Derivative Works thereof, that is intentionally submitted to Licensor for inclusion in the Work by the copyright owner or by an individual or Legal Entity authorized to submit on behalf of the copyright owner. For the purposes of this definition, "submitted" means any form of electronic, verbal, or written communication sent to the Licensor or its representatives, including but not limited to communication on electronic mailing lists, source code control systems, and issue tracking systems that are managed by, or on behalf of, the Licensor for the purpose of discussing and improving the Work, but excluding communication that is conspicuously marked or otherwise designated in writing by the copyright owner as "Not a Contribution."

"Contributor" shall mean Licensor and any individual or Legal Entity on behalf of whom a Contribution has been received by Licensor and subsequently incorporated within the Work.

2. Grant of Copyright License. Subject to the terms and conditions of this License, each Contributor hereby grants to You a perpetual, worldwide, non-exclusive, no-charge, royalty-free, irrevocable copyright license to reproduce, prepare Derivative Works of, publicly display, publicly perform, sublicense, and distribute the Work and such Derivative Works in Source or Object form.

3. Grant of Patent License. Subject to the terms and conditions of this License, each Contributor hereby grants to You a perpetual, worldwide, non-exclusive, no-charge, royalty-free, irrevocable (except as stated in this section) patent license to make, have made, use, offer to sell, sell, import, and otherwise transfer the Work, where such license applies only to those patent claims licensable by such Contributor that are necessarily infringed by their Contribution(s) alone or by combination of their Contribution(s) with the Work to which such Contribution(s) was submitted. If You institute patent litigation against any entity (including a cross-claim or counterclaim in a lawsuit) alleging that the Work or a Contribution incorporated within the Work constitutes direct or contributory patent infringement, then any patent licenses granted to You under this License for that Work shall terminate as of the date such litigation is filed.

4. Redistribution. You may reproduce and distribute copies of the Work or Derivative Works thereof in any medium, with or without modifications, and in Source or Object form, provided that You meet the following conditions:

  1. You must give any other recipients of the Work or Derivative Works a copy of this License; and
  2. You must cause any modified files to carry prominent notices stating that You changed the files; and
  3. You must retain, in the Source form of any Derivative Works that You distribute, all copyright, patent, trademark, and attribution notices from the Source form of the Work, excluding those notices that do not pertain to any part of the Derivative Works; and
  4. If the Work includes a "NOTICE" text file as part of its distribution, then any Derivative Works that You distribute must include a readable copy of the attribution notices contained within such NOTICE file, excluding those notices that do not pertain to any part of the Derivative Works, in at least one of the following places: within a NOTICE text file distributed as part of the Derivative Works; within the Source form or documentation, if provided along with the Derivative Works; or, within a display generated by the Derivative Works, if and wherever such third-party notices normally appear. The contents of the NOTICE file are for informational purposes only and do not modify the License. You may add Your own attribution notices within Derivative Works that You distribute, alongside or as an addendum to the NOTICE text from the Work, provided that such additional attribution notices cannot be construed as modifying the License.
You may add Your own copyright statement to Your modifications and may provide additional or different license terms and conditions for use, reproduction, or distribution of Your modifications, or for any such Derivative Works as a whole, provided Your use, reproduction, and distribution of the Work otherwise complies with the conditions stated in this License.

5. Submission of Contributions. Unless You explicitly state otherwise, any Contribution intentionally submitted for inclusion in the Work by You to the Licensor shall be under the terms and conditions of this License, without any additional terms or conditions. Notwithstanding the above, nothing herein shall supersede or modify the terms of any separate license agreement you may have executed with Licensor regarding such Contributions.

6. Trademarks. This License does not grant permission to use the trade names, trademarks, service marks, or product names of the Licensor, except as required for reasonable and customary use in describing the origin of the Work and reproducing the content of the NOTICE file.

7. Disclaimer of Warranty. Unless required by applicable law or agreed to in writing, Licensor provides the Work (and each Contributor provides its Contributions) on an "AS IS" BASIS, WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied, including, without limitation, any warranties or conditions of TITLE, NON-INFRINGEMENT, MERCHANTABILITY, or FITNESS FOR A PARTICULAR PURPOSE. You are solely responsible for determining the appropriateness of using or redistributing the Work and assume any risks associated with Your exercise of permissions under this License.

8. Limitation of Liability. In no event and under no legal theory, whether in tort (including negligence), contract, or otherwise, unless required by applicable law (such as deliberate and grossly negligent acts) or agreed to in writing, shall any Contributor be liable to You for damages, including any direct, indirect, special, incidental, or consequential damages of any character arising as a result of this License or out of the use or inability to use the Work (including but not limited to damages for loss of goodwill, work stoppage, computer failure or malfunction, or any and all other commercial damages or losses), even if such Contributor has been advised of the possibility of such damages.

9. Accepting Warranty or Additional Liability. While redistributing the Work or Derivative Works thereof, You may choose to offer, and charge a fee for, acceptance of support, warranty, indemnity, or other liability obligations and/or rights consistent with this License. However, in accepting such obligations, You may act only on Your own behalf and on Your sole responsibility, not on behalf of any other Contributor, and only if You agree to indemnify, defend, and hold each Contributor harmless for any liability incurred by, or claims asserted against, such Contributor by reason of your accepting any such warranty or additional liability.

END OF TERMS AND CONDITIONS

Eclipse Distribution License - v 1.0

All rights reserved.

Redistribution and use in source and binary forms, with or without modification, are permitted provided that the following conditions are met:

  • Redistributions of source code must retain the above copyright notice, this list of conditions and the following disclaimer.
  • Redistributions in binary form must reproduce the above copyright notice, this list of conditions and the following disclaimer in the documentation and/or other materials provided with the distribution.
  • Neither the name of the Eclipse Foundation, Inc. nor the names of its contributors may be used to endorse or promote products derived from this software without specific prior written permission.

THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.

Eclipse Public License - v 2.0

THE ACCOMPANYING PROGRAM IS PROVIDED UNDER THE TERMS OF THIS ECLIPSE PUBLIC LICENSE ("AGREEMENT"). ANY USE, REPRODUCTION OR DISTRIBUTION OF THE PROGRAM CONSTITUTES RECIPIENT'S ACCEPTANCE OF THIS AGREEMENT.

1. DEFINITIONS "Contribution" means:

  • a) in the case of the initial Contributor, the initial content Distributed under this Agreement, and
  • b) in the case of each subsequent Contributor:
    • i) changes to the Program, and
    • ii) additions to the Program;
    where such changes and/or additions to the Program originate from and are Distributed by that particular Contributor. A Contribution "originates" from a Contributor if it was added to the Program by such Contributor itself or anyone acting on such Contributor's behalf. Contributions do not include changes or additions to the Program that are not Modified Works.
"Contributor" means any person or entity that Distributes the Program. "Licensed Patents" mean patent claims licensable by a Contributor which are necessarily infringed by the use or sale of its Contribution alone or when combined with the Program.

"Program" means the Contributions Distributed in accordance with this Agreement.

"Recipient" means anyone who receives the Program under this Agreement or any Secondary License (as applicable), including Contributors.

"Derivative Works" shall mean any work, whether in Source Code or other form, that is based on (or derived from) the Program and for which the editorial revisions, annotations, elaborations, or other modifications represent, as a whole, an original work of authorship.

"Modified Works" shall mean any work in Source Code or other form that results from an addition to, deletion from, or modification of the contents of the Program, including, for purposes of clarity any new file in Source Code form that contains any contents of the Program. Modified Works shall not include works that contain only declarations, interfaces, types, classes, structures, or files of the Program solely in each case in order to link to, bind by name, or subclass the Program or Modified Works thereof.

"Distribute" means the acts of a) distributing or b) making available in any manner that enables the transfer of a copy.

"Source Code" means the form of a Program preferred for making modifications, including but not limited to software source code, documentation source, and configuration files.

"Secondary License" means either the GNU General Public License, Version 2.0, or any later versions of that license, including any exceptions or additional permissions as identified by the initial Contributor.

2. GRANT OF RIGHTS

  • a) Subject to the terms of this Agreement, each Contributor hereby grants Recipient a non-exclusive, worldwide, royalty-free copyright license to reproduce, prepare Derivative Works of, publicly display, publicly perform, Distribute and sublicense the Contribution of such Contributor, if any, and such Derivative Works.
  • b) Subject to the terms of this Agreement, each Contributor hereby grants Recipient a non-exclusive, worldwide, royalty-free patent license under Licensed Patents to make, use, sell, offer to sell, import and otherwise transfer the Contribution of such Contributor, if any, in Source Code or other form. This patent license shall apply to the combination of the Contribution and the Program if, at the time the Contribution is added by the Contributor, such addition of the Contribution causes such combination to be covered by the Licensed Patents. The patent license shall not apply to any other combinations which include the Contribution. No hardware per se is licensed hereunder.
  • c) Recipient understands that although each Contributor grants the licenses to its Contributions set forth herein, no assurances are provided by any Contributor that the Program does not infringe the patent or other intellectual property rights of any other entity. Each Contributor disclaims any liability to Recipient for claims brought by any other entity based on infringement of intellectual property rights or otherwise. As a condition to exercising the rights and licenses granted hereunder, each Recipient hereby assumes sole responsibility to secure any other intellectual property rights needed, if any. For example, if a third party patent license is required to allow Recipient to Distribute the Program, it is Recipient's responsibility to acquire that license before distributing the Program.
  • d) Each Contributor represents that to its knowledge it has sufficient copyright rights in its Contribution, if any, to grant the copyright license set forth in this Agreement.
  • e) Notwithstanding the terms of any Secondary License, no Contributor makes additional grants to any Recipient (other than those set forth in this Agreement) as a result of such Recipient's receipt of the Program under the terms of a Secondary License (if permitted under the terms of Section 3).

3. REQUIREMENTS 3.1 If a Contributor Distributes the Program in any form, then:

  • a) the Program must also be made available as Source Code, in accordance with section 3.2, and the Contributor must accompany the Program with a statement that the Source Code for the Program is available under this Agreement, and informs Recipients how to obtain it in a reasonable manner on or through a medium customarily used for software exchange; and
  • b) the Contributor may Distribute the Program under a license different than this Agreement, provided that such license:
    • i) effectively disclaims on behalf of all other Contributors all warranties and conditions, express and implied, including warranties or conditions of title and non-infringement, and implied warranties or conditions of merchantability and fitness for a particular purpose;
    • ii) effectively excludes on behalf of all other Contributors all liability for damages, including direct, indirect, special, incidental and consequential damages, such as lost profits;
    • iii) does not attempt to limit or alter the recipients' rights in the Source Code under section 3.2; and
    • iv) requires any subsequent distribution of the Program by any party to be under a license that satisfies the requirements of this section 3.
3.2 When the Program is Distributed as Source Code:
  • a) it must be made available under this Agreement, or if the Program (i) is combined with other material in a separate file or files made available under a Secondary License, and (ii) the initial Contributor attached to the Source Code the notice described in Exhibit A of this Agreement, then the Program may be made available under the terms of such Secondary Licenses, and
  • b) a copy of this Agreement must be included with each copy of the Program.
3.3 Contributors may not remove or alter any copyright, patent, trademark, attribution notices, disclaimers of warranty, or limitations of liability (‘notices') contained within the Program from any copy of the Program which they Distribute, provided that Contributors may add their own appropriate notices.

4. COMMERCIAL DISTRIBUTION Commercial distributors of software may accept certain responsibilities with respect to end users, business partners and the like. While this license is intended to facilitate the commercial use of the Program, the Contributor who includes the Program in a commercial product offering should do so in a manner which does not create potential liability for other Contributors. Therefore, if a Contributor includes the Program in a commercial product offering, such Contributor ("Commercial Contributor") hereby agrees to defend and indemnify every other Contributor ("Indemnified Contributor") against any losses, damages and costs (collectively "Losses") arising from claims, lawsuits and other legal actions brought by a third party against the Indemnified Contributor to the extent caused by the acts or omissions of such Commercial Contributor in connection with its distribution of the Program in a commercial product offering. The obligations in this section do not apply to any claims or Losses relating to any actual or alleged intellectual property infringement. In order to qualify, an Indemnified Contributor must: a) promptly notify the Commercial Contributor in writing of such claim, and b) allow the Commercial Contributor to control, and cooperate with the Commercial Contributor in, the defense and any related settlement negotiations. The Indemnified Contributor may participate in any such claim at its own expense.

For example, a Contributor might include the Program in a commercial product offering, Product X. That Contributor is then a Commercial Contributor. If that Commercial Contributor then makes performance claims, or offers warranties related to Product X, those performance claims and warranties are such Commercial Contributor's responsibility alone. Under this section, the Commercial Contributor would have to defend claims against the other Contributors related to those performance claims and warranties, and if a court requires any other Contributor to pay any damages as a result, the Commercial Contributor must pay those damages.

5. NO WARRANTY EXCEPT AS EXPRESSLY SET FORTH IN THIS AGREEMENT, AND TO THE EXTENT PERMITTED BY APPLICABLE LAW, THE PROGRAM IS PROVIDED ON AN "AS IS" BASIS, WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, EITHER EXPRESS OR IMPLIED INCLUDING, WITHOUT LIMITATION, ANY WARRANTIES OR CONDITIONS OF TITLE, NON-INFRINGEMENT, MERCHANTABILITY OR FITNESS FOR A PARTICULAR PURPOSE. Each Recipient is solely responsible for determining the appropriateness of using and distributing the Program and assumes all risks associated with its exercise of rights under this Agreement, including but not limited to the risks and costs of program errors, compliance with applicable laws, damage to or loss of data, programs or equipment, and unavailability or interruption of operations.

6. DISCLAIMER OF LIABILITY EXCEPT AS EXPRESSLY SET FORTH IN THIS AGREEMENT, AND TO THE EXTENT PERMITTED BY APPLICABLE LAW, NEITHER RECIPIENT NOR ANY CONTRIBUTORS SHALL HAVE ANY LIABILITY FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING WITHOUT LIMITATION LOST PROFITS), HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OR DISTRIBUTION OF THE PROGRAM OR THE EXERCISE OF ANY RIGHTS GRANTED HEREUNDER, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGES.

7. GENERAL If any provision of this Agreement is invalid or unenforceable under applicable law, it shall not affect the validity or enforceability of the remainder of the terms of this Agreement, and without further action by the parties hereto, such provision shall be reformed to the minimum extent necessary to make such provision valid and enforceable.

If Recipient institutes patent litigation against any entity (including a cross-claim or counterclaim in a lawsuit) alleging that the Program itself (excluding combinations of the Program with other software or hardware) infringes such Recipient's patent(s), then such Recipient's rights granted under Section 2(b) shall terminate as of the date such litigation is filed.

All Recipient's rights under this Agreement shall terminate if it fails to comply with any of the material terms or conditions of this Agreement and does not cure such failure in a reasonable period of time after becoming aware of such noncompliance. If all Recipient's rights under this Agreement terminate, Recipient agrees to cease use and distribution of the Program as soon as reasonably practicable. However, Recipient's obligations under this Agreement and any licenses granted by Recipient relating to the Program shall continue and survive.

Everyone is permitted to copy and distribute copies of this Agreement, but in order to avoid inconsistency the Agreement is copyrighted and may only be modified in the following manner. The Agreement Steward reserves the right to publish new versions (including revisions) of this Agreement from time to time. No one other than the Agreement Steward has the right to modify this Agreement. The Eclipse Foundation is the initial Agreement Steward. The Eclipse Foundation may assign the responsibility to serve as the Agreement Steward to a suitable separate entity. Each new version of the Agreement will be given a distinguishing version number. The Program (including Contributions) may always be Distributed subject to the version of the Agreement under which it was received. In addition, after a new version of the Agreement is published, Contributor may elect to Distribute the Program (including its Contributions) under the new version.

Except as expressly stated in Sections 2(a) and 2(b) above, Recipient receives no rights or licenses to the intellectual property of any Contributor under this Agreement, whether expressly, by implication, estoppel or otherwise. All rights in the Program not expressly granted under this Agreement are reserved. Nothing in this Agreement is intended to be enforceable by any entity that is not a Contributor or Recipient. No third-party beneficiary rights are created under this Agreement.

Exhibit A – Form of Secondary Licenses Notice "This Source Code may also be made available under the following Secondary Licenses when the conditions for such availability set forth in the Eclipse Public License, v. 2.0 are satisfied: {name license(s), version(s), and exceptions or additional permissions here}."

Simply including a copy of this Agreement, including this Exhibit A is not sufficient to license the Source Code under Secondary Licenses.

If it is not possible or desirable to put the notice in a particular file, then You may include the notice in a location (such as a LICENSE file in a relevant directory) where a recipient would be likely to look for such a notice.

You may add additional accurate notices of copyright ownership.

GNU Classpath

Classpath is distributed under the terms of the GNU General Public License with the following clarification and special exception.

Linking this library statically or dynamically with other modules is making a combined work based on this library. Thus, the terms and conditions of the GNU General Public License cover the whole combination.

As a special exception, the copyright holders of this library give you permission to link this library with independent modules to produce an executable, regardless of the license terms of these independent modules, and to copy and distribute the resulting executable under terms of your choice, provided that you also meet, for each linked independent module, the terms and conditions of the license of that module. An independent module is a module which is not derived from or based on this library. If you modify this library, you may extend this exception to your version of the library, but you are not obligated to do so. If you do not wish to do so, delete this exception statement from your version.

As such, it can be used to run, create and distribute a large class of applications and applets. When GNU Classpath is used unmodified as the core class library for a virtual machine, compiler for the java languge, or for a program written in the java programming language it does not affect the licensing for distributing those programs directly.

OpenJDK Assembly Exception

The OpenJDK source code made available by Oracle America, Inc. (Oracle) at openjdk.java.net ("OpenJDK Code") is distributed under the terms of the GNU General Public License <http://www.gnu.org/copyleft/gpl.html> version 2 only ("GPL2"), with the following clarification and special exception.

Linking this OpenJDK Code statically or dynamically with other code is making a combined work based on this library. Thus, the terms and conditions of GPL2 cover the whole combination.

As a special exception, Oracle gives you permission to link this OpenJDK Code with certain code licensed by Oracle as indicated at http://openjdk.java.net/legal/exception-modules-2007-05-08.html ("Designated Exception Modules") to produce an executable, regardless of the license terms of the Designated Exception Modules, and to copy and distribute the resulting executable under GPL2, provided that the Designated Exception Modules continue to be governed by the licenses under which they were offered by Oracle.

As such, it allows licensees and sublicensees of Oracle's GPL2 OpenJDK Code to build an executable that includes those portions of necessary code that Oracle could not provide under GPL2 (or that Oracle has provided under GPL2 with the Classpath exception). If you modify or add to the OpenJDK code, that new GPL2 code may still be combined with Designated Exception Modules if the new code is made subject to this exception by its copyright holder.

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