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CycleGAN with Better Cycles

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arxiv 2408.15374 v2 pith:JGUR5D2S submitted 2024-08-27 cs.CV cs.LG

classification cs.CVcs.LG
keywords consistencycyclebettercycleganresultsachievesapplicationsapproach
verification ladder T0 review T1 audit T2 compute T3 formal
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CycleGAN provides a framework to train image-to-image translation with unpaired datasets using cycle consistency loss [4]. While results are great in many applications, the pixel level cycle consistency can potentially be problematic and causes unrealistic images in certain cases. In this project, we propose three simple modifications to cycle consistency, and show that such an approach achieves better results with fewer artifacts.

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