Implicit Pairs for Boosting Unpaired Image-to-Image Translation
Yiftach Ginger,
Dov Danon,
Hadar Averbuch-Elor
et al.
Abstract:In image-to-image translation the goal is to learn a mapping from one image domain to another. In the case of supervised approaches the mapping is learned from paired samples. However, collecting large sets of image pairs is often either prohibitively expensive or not possible. As a result, in recent years more attention has been given to techniques that learn the mapping from unpaired sets.In our work, we show that injecting implicit pairs into unpaired sets strengthens the mapping between the two domains, im… Show more
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