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-----------
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[简体中文](README_zh_CN.md)
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NNI (Neural Network Intelligence) is a toolkit to help users run automated machine learning (AutoML) experiments. 
The tool dispatches and runs trial jobs generated by tuning algorithms to search the best neural architecture and/or hyper-parameters in different environments like local machine, remote servers and cloud.
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### **NNI [v0.7](https://github.com/Microsoft/nni/releases) has been released!**
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<p align="center">
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  <a href="#nni-v05-has-been-released"><img src="docs/img/overview.svg" /></a>
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</p>
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<table>
  <tbody>
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    <tr align="center" valign="bottom">
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      <td>
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        <b>Supported Frameworks</b>
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        <img src="docs/img/bar.png"/>
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      </td>
      <td>
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        <b>Tuning Algorithms</b>
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        <img src="docs/img/bar.png"/>
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      </td>
      <td>
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        <b>Training Services</b>
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        <img src="docs/img/bar.png"/>
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      </td>
    </tr>
    <tr/>
    <tr valign="top">
      <td>
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        <ul>
          <li>PyTorch</li>
          <li>TensorFlow</li>
          <li>Keras</li>
          <li>MXNet</li>
          <li>Caffe2</li>
          <li>CNTK (Python language)</li>
          <li>Chainer</li>
          <li>Theano</li>
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        </ul>
      </td>
      <td>
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        <a href="docs/en_US/Builtin_Tuner.md">Tuner</a>
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        <ul>
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          <li><a href="docs/en_US/Builtin_Tuner.md#TPE">TPE</a></li>
          <li><a href="docs/en_US/Builtin_Tuner.md#Random">Random Search</a></li>
          <li><a href="docs/en_US/Builtin_Tuner.md#Anneal">Anneal</a></li>
          <li><a href="docs/en_US/Builtin_Tuner.md#Evolution">Naive Evolution</a></li>
          <li><a href="docs/en_US/Builtin_Tuner.md#SMAC">SMAC</a></li>
          <li><a href="docs/en_US/Builtin_Tuner.md#Batch">Batch</a></li>
          <li><a href="docs/en_US/Builtin_Tuner.md#Grid">Grid Search</a></li>
          <li><a href="docs/en_US/Builtin_Tuner.md#Hyperband">Hyperband</a></li>
          <li><a href="docs/en_US/Builtin_Tuner.md#NetworkMorphism">Network Morphism</a></li>
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          <li><a href="examples/tuners/enas_nni/README.md">ENAS</a></li>
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          <li><a href="docs/en_US/Builtin_Tuner.md#NetworkMorphism#MetisTuner">Metis Tuner</a></li>
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          <li><a href="docs/en_US/Builtin_Tuner.md#BOHB">BOHB</a></li>
        </ul>
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          <a href="docs/en_US/Builtin_Assessors.md#assessor">Assessor</a> 
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        <ul>
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          <li><a href="docs/en_US/Builtin_Assessors.md#Medianstop">Median Stop</a></li>
          <li><a href="docs/en_US/Builtin_Assessors.md#Curvefitting">Curve Fitting</a></li>
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        </ul>
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      <td>
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        <li><a href="docs/en_US/LocalMode.md">Local Machine</a></li>
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        <li><a href="docs/en_US/RemoteMachineMode.md">Remote Servers</a></li>
        <li><a href="docs/en_US/PAIMode.md">OpenPAI</a></li>
        <li><a href="docs/en_US/KubeflowMode.md">Kubeflow</a></li>
        <li><a href="docs/en_US/FrameworkControllerMode.md">FrameworkController on K8S (AKS etc.)</a></li>
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      </ul>
      </td>
    </tr>
  </tbody>
</table>
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## **Who should consider using NNI**
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* Those who want to try different AutoML algorithms in their training code (model) at their local machine.
* Those who want to run AutoML trial jobs in different environments to speed up search (e.g. remote servers and cloud).
* Researchers and data scientists who want to implement their own AutoML algorithms and compare it with other algorithms.
* ML Platform owners who want to support AutoML in their platform.
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## Related Projects
Targeting at openness and advancing state-of-art technology, [Microsoft Research (MSR)](https://www.microsoft.com/en-us/research/group/systems-research-group-asia/) had also released few other open source projects.
* [OpenPAI](https://github.com/Microsoft/pai) : an open source platform that provides complete AI model training and resource management capabilities, it is easy to extend and supports on-premise, cloud and hybrid environments in various scale.
* [FrameworkController](https://github.com/Microsoft/frameworkcontroller) : an open source general-purpose Kubernetes Pod Controller that orchestrate all kinds of applications on Kubernetes by a single controller.
* [MMdnn](https://github.com/Microsoft/MMdnn) : A comprehensive, cross-framework solution to convert, visualize and diagnose deep neural network models. The "MM" in MMdnn stands for model management and "dnn" is an acronym for deep neural network.
We encourage researchers and students leverage these projects to accelerate the AI development and research.

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## **Install & Verify**
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If you choose NNI Windows local mode and you use powershell to run script for the first time, you need to **run powershell as administrator** with this command first:
```bash
    Set-ExecutionPolicy -ExecutionPolicy Unrestricted
```
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**Install through pip** 	
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* We support Linux, MacOS and Windows(local mode) in current stage, Ubuntu 16.04 or higher, MacOS 10.14.1 along with Windows 10.1809 are tested and supported. Simply run the following `pip install` in an environment that has `python >= 3.5`.
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Linux and MacOS
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```bash
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    python3 -m pip install --upgrade nni
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```
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Windows
```bash
    python -m pip install --upgrade nni
```
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Note:

* `--user` can be added if you want to install NNI in your home directory, which does not require any special privileges.
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* Currently NNI on Windows only support local mode. Anaconda is highly recommanded to install NNI on Windows. 
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* If there is any error like `Segmentation fault`, please refer to [FAQ](docs/en_US/FAQ.md)
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**Install through source code**
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* We support Linux (Ubuntu 16.04 or higher), MacOS (10.14.1) and Windows local mode (10.1809) in our current stage. 

Linux and MacOS
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* Run the following commands in an environment that has `python >= 3.5`, `git` and `wget`.
```bash	
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    git clone -b v0.7 https://github.com/Microsoft/nni.git
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    cd nni	
    source install.sh	
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```
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Windows
* Run the following commands in an environment that has `python >=3.5`, `git` and `powershell`    
```bash
  git clone -b v0.7 https://github.com/Microsoft/nni.git
  cd nni
  powershell ./install.ps1
```
For the system requirements of NNI, please refer to [Install NNI](docs/en_US/Installation.md)  
For NNI Windows local mode, please refer to [NNI Windows local mode](docs/en_US/WindowsLocalMode.md) 
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**Verify install**	
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The following example is an experiment built on TensorFlow. Make sure you have **TensorFlow installed** before running it.	
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* Download the examples via clone the source code.	
```bash	
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    git clone -b v0.7 https://github.com/Microsoft/nni.git
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```
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Linux and MacOS
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* Run the mnist example.
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```bash
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    nnictl create --config nni/examples/trials/mnist/config.yml
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```
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Windows
* Run the mnist example.
```bash
    nnictl create --config nni/examples/trials/mnist/config_windows.yml
```
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* Wait for the message `INFO: Successfully started experiment!` in the command line. This message indicates that your experiment has been successfully started. You can explore the experiment using the `Web UI url`.
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```
INFO: Starting restful server...
INFO: Successfully started Restful server!
INFO: Setting local config...
INFO: Successfully set local config!
INFO: Starting experiment...
INFO: Successfully started experiment!
-----------------------------------------------------------------------
The experiment id is egchD4qy
The Web UI urls are: http://223.255.255.1:8080   http://127.0.0.1:8080
-----------------------------------------------------------------------

You can use these commands to get more information about the experiment
-----------------------------------------------------------------------
         commands                       description
1. nnictl experiment show        show the information of experiments
2. nnictl trial ls               list all of trial jobs
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3. nnictl top                    monitor the status of running experiments
4. nnictl log stderr             show stderr log content
5. nnictl log stdout             show stdout log content
6. nnictl stop                   stop an experiment
7. nnictl trial kill             kill a trial job by id
8. nnictl --help                 get help information about nnictl
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-----------------------------------------------------------------------
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```
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* Open the `Web UI url` in your browser, you can view detail information of the experiment and all the submitted trial jobs as shown below. [Here](docs/en_US/WebUI.md) are more Web UI pages.
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<table style="border: none">
    <th><img src="./docs/img/webui_overview_page.png" alt="drawing" width="395"/></th>
    <th><img src="./docs/img/webui_trialdetail_page.png" alt="drawing" width="410"/></th>
</table>

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## **Documentation**
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* [NNI overview](docs/en_US/Overview.md)
* [Quick start](docs/en_US/QuickStart.md)
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## **How to**
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* [Install NNI](docs/en_US/Installation.md)
* [Use command line tool nnictl](docs/en_US/NNICTLDOC.md)
* [Use NNIBoard](docs/en_US/WebUI.md)
* [How to define search space](docs/en_US/SearchSpaceSpec.md)
* [How to define a trial](docs/en_US/Trials.md)
* [How to choose tuner/search-algorithm](docs/en_US/Builtin_Tuner.md)
* [Config an experiment](docs/en_US/ExperimentConfig.md)
* [How to use annotation](docs/en_US/Trials.md#nni-python-annotation)
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## **Tutorials**
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* [Run an experiment on local (with multiple GPUs)?](docs/en_US/LocalMode.md)
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* [Run an experiment on multiple machines?](docs/en_US/RemoteMachineMode.md)
* [Run an experiment on OpenPAI?](docs/en_US/PAIMode.md)
* [Run an experiment on Kubeflow?](docs/en_US/KubeflowMode.md)
* [Try different tuners](docs/en_US/tuners.rst)
* [Try different assessors](docs/en_US/assessors.rst)
* [Implement a customized tuner](docs/en_US/Customize_Tuner.md)
* [Implement a customized assessor](docs/en_US/Customize_Assessor.md)
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* [Use Genetic Algorithm to find good model architectures for Reading Comprehension task](examples/trials/ga_squad/README.md)
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## **Contribute**
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This project welcomes contributions and suggestions, we use [GitHub issues](https://github.com/Microsoft/nni/issues) for tracking requests and bugs.
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Issues with the **good first issue** label are simple and easy-to-start ones that we recommend new contributors to start with.

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To set up environment for NNI development, refer to the instruction: [Set up NNI developer environment](docs/en_US/SetupNNIDeveloperEnvironment.md)
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Before start coding, review and get familiar with the NNI Code Contribution Guideline: [Contributing](docs/en_US/CONTRIBUTING.md)
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We are in construction of the instruction for [How to Debug](docs/en_US/HowToDebug.md), you are also welcome to contribute questions or suggestions on this area.
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## **License** 
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The entire codebase is under [MIT license](LICENSE)