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DeepConfuse

Description:

This is the official repository for the implementation of DeepConfuse.

A pytorch implementation of DeepConfuse proposed in "Learning to Confuse: Generating Training Time Adversarial Data with Auto-Encoder". This repo contains pretrained model and our code for experiment results on MNIST, CIFAR-10 and a restrict version of ImageNet. The implementation is flexible enough for modifying the model and applying it to your own datasets.

Package Official Website: http://www.lamda.nju.edu.cn/code_deepconfuse.ashx

Package Github Website: https://github.com/kingfengji/DeepConfuse

ATTN: This package is provided "AS IS" and free for academic usage. You can run it at your own risk. For other purposes, please contact Prof. Zhi-Hua Zhou ().

ATTN2: This package was developed and maintained by Mr.Ji Feng ( http://www.lamda.nju.edu.cn/fengj/). For any problem concerning the codes, please feel free to contact Mr.Feng. ()

Reference: [1] J. Feng,Q.-Z. Cai and Z.-H. Zhou. "Learning to Confuse: Generating Training Time Adversarial Data with Auto-Encoder" In: NeurIPS, 2019

Download: code (32.2MB)
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