Neural Texture Extraction and Distribution for Controllable Person Image Synthesis
Yurui Ren, Xiaoqing Fan, Ge Li, Shan Liu, Thomas H. Li
摘要
We deal with the controllable person image synthesis task which aims to re-render a human from a reference image with explicit control over body pose and appearance. Observing that person images are highly structured, we propose to generate desired images by extracting and distributing semantic entities of reference images. To achieve this goal, a neural texture extraction and distribution operation based on double attention is described. This operation first extracts semantic neural textures from reference feature maps. Then, it distributes the extracted neural textures according to the spatial distributions learned from target poses. Our model is trained to predict human images in arbitrary poses, which encourages it to extract disentangled and expressive neural textures representing the appearance of different semantic entities. The disentangled representation further enables explicit appearance control. Neural textures of different reference images can be fused to control the appearance of the interested areas. Experimental comparisons show the superiority of the proposed model. Code is available at https://github.com/RenYurui/ Neural-Texture-Extraction-Distribution.
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引用它的顶会 Paper26
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它引用的顶会 Paper10
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- TryOnGAN: body-aware try-on via layered interpolationKathleen M. Lewis, Srivatsan Varadharajan, Ira Kemelmacher-ShlizermanSIGGRAPH 2021 · 被引用 86 次
- Structure-aware Person Image Generation with Pose Decomposition and Semantic CorrelationJilin Tang, Yi Yuan, Tianjia Shao, Yong Liu 等AAAI 2021 · 被引用 22 次
- Combining Attention with Flow for Person Image SynthesisYurui Ren, Yubo Wu, Thomas H. Li, Shan Liu 等ACM MM 2021 · 被引用 16 次
- Cross-Domain Correspondence Learning for Exemplar-Based Image TranslationPan Zhang, Bo Zhang, Dong Chen, Lu Yuan 等CVPR 2020
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