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Disentangling the Spatial Structure and Style in Conditional VAE

Abstract

This paper aims to disentangle the latent space in cVAE into the spatial structure and the style code, which are complementary to each other, with one of them zsz_s being label relevant and the other zuz_u irrelevant. The generator is built by a connected encoder-decoder and a label condition mapping network. Depending on whether the label is related with the spatial structure, the output zsz_s from the condition mapping network is used either as a style code or a spatial structure code. The encoder provides the label irrelevant posterior from which zuz_u is sampled. The decoder employs zsz_s and zuz_u in each layer by adaptive normalization like SPADE or AdaIN. Extensive experiments on two datasets with different types of labels show the effectiveness of our method.

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