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pytorch implementation for paper, towards realistic predictors

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towards-realistic-predictors

This repo constains the pytorch implementation for the paper Towards Realistic Predictors on ECCV2018.

requirements

  • python 3.6
  • pytorch = 0.4
  • other common modules

Usage

Since our code is not an end-to-end trainable model (for a improved new version, please turn to an end to end implementation for realistic predictors), please run

train_HPnet_dataset_net_net.py

to get the hardness predictor after replacing 'dataset' and 'net' with 'imagenet' or 'indoor' and 'res' or 'vgg'.

Then run

train_rp_dataset_net_net.py

to get realistic predictors.

We used the custom data load form, so before training, please first make a train and test sample list. Each item is formed as

imagepath target index

Contact

For questions, feel free to reach

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pytorch implementation for paper, towards realistic predictors

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