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AAE

This is an implementation of AAE(adversarial auto-encoder) designed to find potential map between different type of images.

For example, we use human faces dataset and anime faces dataset to train two model separately. In the end, we could encrypt a human face into a anime face and decrypt it if necessary.

Result

Fake Human Faces Generated by Model

Fake Anime Faces Generated by Model

Image Encrypt Result

Anime Faces Reconstruct Result

Dataset

We use the LFW dataset to train our human face model.

To gather anime faces data from internet please run python3 anime.py to download images from a Japan famous anime image website konachan.net - Konachan.com Anime Wallpapers. Then run python3 detect.py to capture faces in those images

Train

Please run python3 main.py

Environment

python3.x + keras2.1.2 + tensorflow1.3

Reference

https://github.com/eriklindernoren/Keras-GAN/blob/master/aae/aae.py

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An implementation of AAE(adversarial auto-encoder)

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