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Python notebooks with ML and deep learning examples with Azure Machine Learning | Microsoft

Home Page: https://docs.microsoft.com/azure/machine-learning/service/

License: MIT License

Jupyter Notebook 78.38% Python 11.09% Dockerfile 0.72% Batchfile 0.13% Shell 0.20% Java 9.48%

machinelearningnotebooks's Introduction

Azure Machine Learning service example notebooks

a community-driven repository of examples using mlflow for tracking can be found at https://github.com/Azure/azureml-examples

This repository contains example notebooks demonstrating the Azure Machine Learning Python SDK which allows you to build, train, deploy and manage machine learning solutions using Azure. The AML SDK allows you the choice of using local or cloud compute resources, while managing and maintaining the complete data science workflow from the cloud.

Azure ML Workflow

Quick installation

pip install azureml-sdk

Read more detailed instructions on how to set up your environment using Azure Notebook service, your own Jupyter notebook server, or Docker.

How to navigate and use the example notebooks?

If you are using an Azure Machine Learning Notebook VM, you are all set. Otherwise, you should always run the Configuration notebook first when setting up a notebook library on a new machine or in a new environment. It configures your notebook library to connect to an Azure Machine Learning workspace, and sets up your workspace and compute to be used by many of the other examples. This index should assist in navigating the Azure Machine Learning notebook samples and encourage efficient retrieval of topics and content.

If you want to...

Tutorials

The Tutorials folder contains notebooks for the tutorials described in the Azure Machine Learning documentation.

How to use Azure ML

The How to use Azure ML folder contains specific examples demonstrating the features of the Azure Machine Learning SDK

  • Training - Examples of how to build models using Azure ML's logging and execution capabilities on local and remote compute targets
  • Training with ML and DL frameworks - Examples demonstrating how to build and train machine learning models at scale on Azure ML and perform hyperparameter tuning.
  • Manage Azure ML Service - Examples how to perform tasks, such as authenticate against Azure ML service in different ways.
  • Automated Machine Learning - Examples using Automated Machine Learning to automatically generate optimal machine learning pipelines and models
  • Machine Learning Pipelines - Examples showing how to create and use reusable pipelines for training and batch scoring
  • Deployment - Examples showing how to deploy and manage machine learning models and solutions
  • Azure Databricks - Examples showing how to use Azure ML with Azure Databricks
  • Reinforcement Learning - Examples showing how to train reinforcement learning agents

Documentation


Community Repository

Visit this community repository to find useful end-to-end sample notebooks. Also, please follow these contribution guidelines when contributing to this repository.

Projects using Azure Machine Learning

Visit following repos to see projects contributed by Azure ML users:

Data/Telemetry

This repository collects usage data and sends it to Microsoft to help improve our products and services. Read Microsoft's privacy statement to learn more

To opt out of tracking, please go to the raw markdown or .ipynb files and remove the following line of code:

    "![Impressions](https://PixelServer20190423114238.azurewebsites.net/api/impressions/MachineLearningNotebooks/how-to-use-azureml/README.png)"

This URL will be slightly different depending on the file.

Impressions

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