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Cross-domain Correspondence Learning for Exemplar-based Image Translation

2020-04-12 · CVPR 2020 6 · Pan Zhang, Bo Zhang, Dong Chen, Lu Yuan, Fang Wen

We present a general framework for exemplar-based image translation, which synthesizes a photo-realistic image from the input in a distinct domain (e.g., semantic segmentation mask, or edge map, or pose keypoints), given an exemplar image. The output has the style (e.g., color, texture) in consistency with the semantically corresponding objects in the exemplar. We propose to jointly learn the crossdomain correspondence and the image translation, where both tasks facilitate each other and thus can be learned with weak supervision. The images from distinct domains are first aligned to an intermediate domain where dense correspondence is established. Then, the network synthesizes images based on the appearance of semantically corresponding patches in the exemplar. We demonstrate the effectiveness of our approach in several image translation tasks. Our method is superior to state-of-the-art methods in terms of image quality significantly, with the image style faithful to the exemplar with semantic consistency. Moreover, we show the utility of our method for several applications

📄 PDF Abstract BibTeX arXiv:2004.05571

Code (3)

KU-CVLAB/MIDMs pytorch
Lotayou/CoCosNet pytorch
microsoft/CoCosNet pytorch

Tasks

Image GenerationImage-to-Image TranslationTranslation

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