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This is a Jittor implementation of VAN proposed by our paper "Visual Attention Network". We will conduct experiment on CUB classification dataset.

CUB is a widely-used dataset for fine-grained visual categorization task.

Requirement

  1. Jittor
  2. Jimm
  3. pytorch==1.7.0

Results

VAN-Base 87.6

More results will come soon,imagenet-1K pretrianed weight can be loaded in Here.

Train

1.download van parameters from: https://cloud.tsinghua.edu.cn/f/58e7acceaf334ecdba89/?dl=1 
2.follow the instructions in train_cub.py to transform it to pth file.
3.download CUB dataset from http://www.vision.caltech.edu/visipedia-data/CUB-200-2011/CUB_200_2011.tgz
4.python train_cub.py (need to edit the path of CUB dataset)

Acknowledgment

This repo is supported by Jimm which is developed and maintained by Yang Shen, Xuhao Sun and Prof Xiu-Shen Wei.

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