Combining Attention with Flow for Person Image Synthesis
Yurui Ren, Yubo Wu, Thomas H. Li, Shan Liu, Ge Li
Abstract
Pose-guided person image synthesis aims to synthesize person images by transforming reference images into target poses. In this paper, we observe that the commonly used spatial transformation blocks have complementary advantages. We propose a novel model by combining the attention operation with the flow-based operation. Our model not only takes the advantage of the attention operation to generate accurate target structures but also uses the flow-based operation to sample realistic source textures. Both objective and subjective experiments demonstrate the superiority of our model. Meanwhile, comprehensive ablation studies verify our hypotheses and show the efficacy of the proposed modules. Besides, additional experiments on the portrait image editing task demonstrate the versatility of the proposed combination.
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Install the CLIlune papers fulltext d6038654-47e8-44ee-8a6b-a7270049de8aCited by top-tier papers7
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Builds on10
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- Liquid Warping GAN: A Unified Framework for Human Motion Imitation, Appearance Transfer and Novel View SynthesisWen Liu, Zhixin Piao, Jie Min, Wenhan Luo et al.ICCV 2019 · 285 citations
- Structure-aware Person Image Generation with Pose Decomposition and Semantic CorrelationJilin Tang, Yi Yuan, Tianjia Shao, Yong Liu et al.AAAI 2021 · 22 citations
- Cross-Domain Correspondence Learning for Exemplar-Based Image TranslationPan Zhang, Bo Zhang, Dong Chen, Lu Yuan et al.CVPR 2020
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