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Multiple Style Transfer via Variational AutoEncoder

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arxiv 2110.07375 v1 pith:ZUAOWN32 submitted 2021-10-13 cs.CV eess.IV

classification cs.CVeess.IV
keywords styletransfermultiplest-vaestylesautoencoderimagelatent
verification ladder T0 review T1 audit T2 compute T3 formal
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Modern works on style transfer focus on transferring style from a single image. Recently, some approaches study multiple style transfer; these, however, are either too slow or fail to mix multiple styles. We propose ST-VAE, a Variational AutoEncoder for latent space-based style transfer. It performs multiple style transfer by projecting nonlinear styles to a linear latent space, enabling to merge styles via linear interpolation before transferring the new style to the content image. To evaluate ST-VAE, we experiment on COCO for single and multiple style transfer. We also present a case study revealing that ST-VAE outperforms other methods while being faster, flexible, and setting a new path for multiple style transfer.

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