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# Automated Deep Learning (AutoDL)
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---------
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[](LICENSE.md)
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Automated Deep Learning (AutoDL-Projects) is an open source, lightweight, but useful project for researchers.
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This project implemented several neural architecture search (NAS) and hyper-parameter optimization (HPO) algorithms.
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## **Who should consider using AutoDL-Projects**
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**Who should consider using AutoDL-Projects**
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- Beginners who want to **try different AutoDL algorithms**
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- Engineers who want to **try AutoDL** to investigate whether AutoDL works on your projects
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- Researchers who want to **easily** implement and experiement **new** AutoDL algorithms.
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## **Why should we use AutoDL-Projects**
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**Why should we use AutoDL-Projects**
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- Simple library dependencies
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- All algorithms are in the same codebase
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- Active maintenance
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@ -40,7 +39,7 @@ At the moment, this project provides the following algorithms and scripts to run
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<tr> <!-- (2-nd row) -->
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<td align="center" valign="middle"> DARTS </td>
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<td align="center" valign="middle"> DARTS: Differentiable Architecture Search </td>
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<td align="center" valign="middle"> <a href="https://github.com/D-X-Y/AutoDL-Projects/tree/master/docs/NAS-Bench-201.md">CVPR-2019-GDAS.md</a> </td>
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<td align="center" valign="middle"> <a href="https://github.com/D-X-Y/AutoDL-Projects/tree/master/docs/NAS-Bench-201.md">NAS-Bench-201.md</a> </td>
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</tr>
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<tr> <!-- (3-nd row) -->
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<td align="center" valign="middle"> GDAS </td>
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