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Domain Bridge for Unpaired Image-to-Image Translation and Unsupervised Domain Adaptation
2020
2020 IEEE Winter Conference on Applications of Computer Vision (WACV)
Image-to-image translation architectures may have limited effectiveness in some circumstances. For example, while generating rainy scenarios, they may fail to model typical traits of rain as water drops, and this ultimately impacts the synthetic images realism. With our method, called domain bridge, web-crawled data are exploited to reduce the domain gap, leading to the inclusion of previously ignored elements in the generated images. We make use of a network for clear to rain translation
doi:10.1109/wacv45572.2020.9093540
dblp:conf/wacv/PizzatiCZC20
fatcat:rdroqfzeyzasdktqulb3vfmyhu