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articles/ai-foundry/includes/region-availability-maas.md

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|---------|---------|---------|---------|
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Codestral-2501 | [Microsoft Managed Countries/Regions](/partner-center/marketplace/tax-details-marketplace#microsoft-managed-countriesregions) <br> Brazil <br> Hong Kong SAR <br> Israel | East US <br> East US 2 <br> North Central US <br> South Central US <br> Sweden Central <br> West US <br> West US 3 | Not available |
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Mistral Nemo | [Microsoft Managed Countries/Regions/Regions](/partner-center/marketplace/tax-details-marketplace#microsoft-managed-countriesregions) <br> Brazil <br> Hong Kong SAR <br> Israel | East US <br> East US 2 <br> North Central US <br> South Central US <br> Sweden Central <br> West US <br> West US 3 | East US 2 |
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Mistral Small | [Microsoft Managed Countries/Regions](/partner-center/marketplace/tax-details-marketplace#microsoft-managed-countriesregions) <br> Brazil <br> Hong Kong SAR <br> Israel | East US <br> East US 2 <br> North Central US <br> South Central US <br> Sweden Central <br> West US <br> West US 3 | Not available |
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Mistral Small (2503) <br> Mistral Small | [Microsoft Managed Countries/Regions](/partner-center/marketplace/tax-details-marketplace#microsoft-managed-countriesregions) <br> Brazil <br> Hong Kong SAR <br> Israel | East US <br> East US 2 <br> North Central US <br> South Central US <br> Sweden Central <br> West US <br> West US 3 | Not available |
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Ministral-3B | [Microsoft Managed Countries/Regions](/partner-center/marketplace/tax-details-marketplace#microsoft-managed-countriesregions) <br> Brazil <br> Hong Kong SAR<br> Israel | East US <br> East US 2 <br> North Central US <br> South Central US <br> Sweden Central <br> West US <br> West US 3 | East US 2 |
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Mistral Large <br> Mistral-Large (2407) | [Microsoft Managed Countries/Regions](/partner-center/marketplace/tax-details-marketplace#microsoft-managed-countriesregions) <br> Brazil <br> Hong Kong SAR<br> Israel | East US <br> East US 2 <br> North Central US <br> South Central US <br> Sweden Central <br> West US <br> West US 3 | Not available |
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Mistral Large (2407) <br> Mistral-Large | [Microsoft Managed Countries/Regions](/partner-center/marketplace/tax-details-marketplace#microsoft-managed-countriesregions) <br> Brazil <br> Hong Kong SAR<br> Israel | East US <br> East US 2 <br> North Central US <br> South Central US <br> Sweden Central <br> West US <br> West US 3 | Not available |
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Mistral-Large (2411) | [Microsoft Managed Countries/Regions](/partner-center/marketplace/tax-details-marketplace#microsoft-managed-countriesregions) <br> Brazil <br> Hong Kong SAR<br> Israel | East US <br> East US 2 <br> North Central US <br> South Central US <br> Sweden Central <br> West US <br> West US 3 | East US 2 |
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articles/ai-services/agents/toc.yml

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href: how-to/tools/azure-ai-search.md
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- name: Microsoft Fabric
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href: how-to/tools/fabric.md
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- name: Use licensed data
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href: how-to/tools/licensed-data.md
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- name: Action tools
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items:
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- name: Function calling
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href: how-to/tools/code-interpreter.md
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- name: Use OpenAPI defined tools
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href: how-to/tools/openapi-spec.md
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- name: Use licensed data
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href: how-to/tools/licensed-data.md
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- name: Azure Functions
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href: how-to/tools/azure-functions.md
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- name: Enterprise features

articles/machine-learning/concept-data-encryption.md

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> [!IMPORTANT]
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> Deployments to Azure Container Instances rely on the Azure Machine Learning Python SDK and CLI v1.
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[!INCLUDE [v1 deprecation](includes/sdk-v1-deprecation.md)]
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[!INCLUDE [v1 cli deprecation](includes/machine-learning-cli-v1-deprecation.md)]
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You can encrypt a deployed Azure Container Instances resource by using customer-managed keys. The customer-managed keys that you use for Container Instances can be stored in the key vault for your workspace.
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[!INCLUDE [sdk v1](includes/machine-learning-sdk-v1.md)]

articles/machine-learning/concept-ml-pipelines.md

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:::moniker range="azureml-api-1"
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[!INCLUDE [dev v1](includes/machine-learning-dev-v1.md)]
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[!INCLUDE [cli-version-info](./includes/machine-learning-cli-v1-deprecation.md)]
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[!INCLUDE [v1 deprecation](includes/sdk-v1-deprecation.md)]
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[!INCLUDE [cli v1 deprecation](./includes/machine-learning-cli-v1-deprecation.md)]
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:::moniker-end
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:::moniker range="azureml-api-2"
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[!INCLUDE [dev v2](includes/machine-learning-dev-v2.md)]

articles/machine-learning/concept-prebuilt-docker-images-inference.md

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Framework version | CPU/GPU | Pre-installed packages | MCR Path
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--- | --- | --- | --- |
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NA | CPU | NA | `mcr.microsoft.com/azureml/minimal-ubuntu20.04-py38-cpu-inference:latest`
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NA | GPU | NA | `mcr.microsoft.com/azureml/minimal-ubuntu20.04-py38-cuda11.6.2-gpu-inference:latest`
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NA | CPU | NA | `mcr.microsoft.com/azureml/minimal-ubuntu22.04-py39-cpu-inference:latest`
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NA | GPU | NA | `mcr.microsoft.com/azureml/minimal-ubuntu22.04-py39-cuda11.8-gpu-inference:latest`
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NA | CPU | NA | `mcr.microsoft.com/azureml/minimal-py312-inference:latest`
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> [!NOTE]
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> Azure Machine Learning supports [Curated environments](resource-curated-environments.md). You can [browse curated environments](how-to-manage-environments-in-studio.md#browse-curated-environments) and add filter for `Tags: Inferencing`.

articles/machine-learning/concept-soft-delete.md

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> [!TIP]
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> The v1 SDK and CLI don't provide functionality to override the default soft-delete behavior. To override the default behavior from SDK or CLI, use the v2 versions. For more information, see the [CLI & SDK v2](concept-v2.md) article or the [v2 version of this article](concept-soft-delete.md?view=azureml-api-2&preserve-view=true#deleting-a-workspace).
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[!INCLUDE [v1 deprecation](includes/sdk-v1-deprecation.md)]
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[!INCLUDE [v1 cli deprecation](includes/machine-learning-cli-v1-deprecation.md)]
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If you're using the [Azure Machine Learning SDK or CLI](/python/api/azure-ai-ml/azure.ai.ml.operations.workspaceoperations#azure-ai-ml-operations-workspaceoperations-begin-delete), you can set the `permanently_delete` flag.

articles/machine-learning/concept-v2.md

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## Should I use v1 or v2?
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Support for CLI v1 will end on September 30, 2025.
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Support for CLI v1 will end on September 30, 2025. Support for SDK v1 will end on June 30, 2026. You can continue to use CLI v1 and SDK v1 until those dates. However, we recommend that you transition to CLI v2 and SDK v2 before those dates.
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We encourage you to migrate your code for both CLI and SDK v1 to CLI and SDK v2. For more information, see [Upgrade to v2](how-to-migrate-from-v1.md).
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### CLI v2
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Azure Machine Learning CLI v1 has been deprecated. Support for the v1 extension will end on September 30, 2025. You'll be able to install and use the v1 extension until that date.
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We recommend that you transition to the `ml`, or v2, extension before September 30, 2025.
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We recommend that you transition to the `ml`, or v2, extension before September 30, 2025. For more information, see [Upgrade to v2](how-to-migrate-from-v1.md).
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### SDK v2
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Azure Machine Learning Python SDK v1 doesn't have a planned deprecation date. If you have significant investments in Python SDK v1 and don't need any new features offered by SDK v2, you can continue to use SDK v1. However, you should consider using SDK v2 if:
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Support for the Azure Machine Learning SDK v1 will end on June 30, 2026. You'll be able to install and use the SDK v1 until that date.
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* You want to use new features like reusable components and managed inferencing.
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* You're starting a new workflow or pipeline. All new features and future investments will be introduced in v2.
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* You want to take advantage of the improved usability of the Python SDK v2 ability to compose jobs and pipelines by using Python functions, with easy evolution from simple to complex tasks.
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We recommend that you transition to the SDK v2 before June 30, 2026. For more information, see [Upgrade to v2](how-to-migrate-from-v1.md).
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## Related content
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articles/machine-learning/concept-workspace.md

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* Use the [VS Code extension](how-to-manage-resources-vscode.md#create-a-workspace) if you work in Visual Studio Code.
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To automate workspace creation using your preferred security settings:
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* [Azure Resource Manager / Bicep templates](how-to-create-workspace-template.md) provide a declarative syntax to deploy Azure resources. An alternative option is to use [Terraform](how-to-manage-workspace-terraform.md). Also see the [Bicep template](/samples/azure/azure-quickstart-templates/machine-learning-end-to-end-secure/) or [Terraform template](https://github.com/Azure/terraform/tree/master/quickstart/201-machine-learning-moderately-secure).
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* [Azure Resource Manager / Bicep templates](how-to-create-workspace-template.md) provide a declarative syntax to deploy Azure resources. An alternative option is to use [Terraform](how-to-manage-workspace-terraform.md). Also see the [Bicep template](/samples/azure/azure-quickstart-templates/machine-learning-end-to-end-secure/) or [Terraform template](https://github.com/Azure/terraform/tree/master/quickstart/201-machine-learning-moderately-secure).
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* Use the [Azure Machine Learning CLI](how-to-configure-cli.md) or [Azure Machine Learning SDK for Python](how-to-manage-workspace.md?tabs=python#create-a-workspace) for prototyping and as part of your [MLOps workflows](concept-model-management-and-deployment.md).
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* Use [REST APIs](how-to-manage-rest.md) directly in scripting environment, for platform integration or in MLOps workflows.
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* Use the [Azure Machine Learning CLI](./v1/reference-azure-machine-learning-cli.md) or [Azure Machine Learning SDK for Python](how-to-manage-workspace.md?tabs=python#create-a-workspace) for prototyping and as part of your [MLOps workflows](concept-model-management-and-deployment.md).
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:::moniker-end
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* [Azure Resource Manager / Bicep templates](how-to-create-workspace-template.md) provide a declarative syntax to deploy Azure resources. An alternative option is to use [Terraform](how-to-manage-workspace-terraform.md). Also see the [Bicep template](/samples/azure/azure-quickstart-templates/machine-learning-end-to-end-secure/) or [Terraform template](https://github.com/Azure/terraform/tree/master/quickstart/201-machine-learning-moderately-secure).
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* Use the [Azure Machine Learning CLI v1](./v1/reference-azure-machine-learning-cli.md) or [Azure Machine Learning SDK v1 for Python](how-to-manage-workspace.md?tabs=python#create-a-workspace) for prototyping and as part of your [MLOps workflows](concept-model-management-and-deployment.md).
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[!INCLUDE [v1 deprecation](includes/sdk-v1-deprecation.md)]
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[!INCLUDE [v1 cli deprecation](includes/machine-learning-cli-v1-deprecation.md)]
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* Use [REST APIs](how-to-manage-rest.md) directly in scripting environment, for platform integration or in MLOps workflows.
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:::moniker-end
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## Tools for workspace interaction and management
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+ On the web:
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+ [Azure Machine Learning studio ](https://ml.azure.com)
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+ In any Python environment with the [Azure Machine Learning SDK](https://aka.ms/sdk-v2-install).
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+ On the command line, using the Azure Machine Learning [CLI extension v2](how-to-configure-cli.md)
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+ [Azure Machine Learning VS Code Extension](how-to-manage-resources-vscode.md#workspaces)
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+ In any Python environment with the [Azure Machine Learning SDK](/python/api/overview/azure/ml/)
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+ On the web:
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+ [Azure Machine Learning studio ](https://ml.azure.com)
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+ [Azure Machine Learning designer](concept-designer.md)
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+ In any Python environment with the [Azure Machine Learning SDK v1](/python/api/overview/azure/ml/)
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[!INCLUDE [v1 deprecation](includes/sdk-v1-deprecation.md)]
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+ On the command line, using the Azure Machine Learning [CLI extension v1](./v1/reference-azure-machine-learning-cli.md)
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The following workspace management tasks are available in each interface.
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articles/machine-learning/how-to-change-storage-access-key.md

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[!INCLUDE [cli v1](includes/machine-learning-dev-v1.md)]
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[!INCLUDE [SDK v1](includes/machine-learning-sdk-v1.md)]
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Learn how to change the access keys for Azure Storage accounts used by Azure Machine Learning. Azure Machine Learning can use storage accounts to store data or trained models.

articles/machine-learning/how-to-configure-network-isolation-with-v2.md

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# Network Isolation Change with Our New API Platform on Azure Resource Manager
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There are two types of operations used by the v1 and v2 APIs, __Azure Resource Manager (ARM)__ and __Azure Machine Learning workspace__.
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> [!IMPORTANT]
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> The v1 API is deprecated as of March 31, 2025. Support for using the CLI v1 to access this API will end on September 30, 2025. Support for using the SDK v1 to access this API will end on June 30, 2026.
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With the v1 API, most operations used the workspace. For v2, we've moved most operations to use public ARM.
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| API version | Public ARM | Inside workspace virtual network |

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