Update README.md
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@ -31,6 +31,9 @@ The neighbor encoding method of our paper is inspired by the reference [2]. If y
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1. re_ranking_feature.py: re-ranking with original feature, Euclidean distance is used. Thanks [Hao Luo](https://github.com/michuanhaohao) !
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2. re_ranking_ranklist: re-ranking with given distance matrices, handle the difference of / division between python 2 and 3. Thanks [huang houjing](https://github.com/huanghoujing) !
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### Pytorch re-implementations
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-[Person_reID_baseline + Random Erasing + Re-ranking](https://github.com/layumi/Person_reID_baseline_pytorch)
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================================================================
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## The new training/testing protocol for CUHK03
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