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Merge pull request #189630 from nibaccam/patch-31
MLflow | link updates
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articles/machine-learning/concept-mlflow.md

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@@ -41,14 +41,12 @@ Together, MLflow Tracking and Azure Machine learning allow you to track an exper
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With MLflow Tracking you can connect Azure Machine Learning as the backend of your MLflow experiments. By doing so, you can do the following tasks,
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+ Track and log experiment metrics and artifacts in your [Azure Machine Learning workspace](./concept-azure-machine-learning-architecture.md#workspace). If you already use MLflow Tracking for your experiments, the workspace provides a centralized, secure, and scalable location to store training metrics and models.
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+ Track and log experiment metrics and artifacts in your [Azure Machine Learning workspace](./concept-azure-machine-learning-architecture.md#workspace). If you already use MLflow Tracking for your experiments, the workspace provides a centralized, secure, and scalable location to store training metrics and models. Learn more at [Track ML models with MLflow and Azure Machine Learning](how-to-use-mlflow.md).
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+ Track and manage models in MLflow and Azure Machine Learning model registry.
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+ [Track Azure Databricks training runs](how-to-use-mlflow-azure-databricks.md).
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Learn more at [Track ML models with MLflow and Azure Machine Learning](how-to-use-mlflow.md).
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## Train MLflow projects (preview)
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[!INCLUDE [preview disclaimer](../../includes/machine-learning-preview-generic-disclaimer.md)]

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