Collecting The Puzzle Pieces: Disentangled Self-Driven Human Pose Transfer by Permuting Textures
Nannan Li, Kevin J. Shih, Bryan A. Plummer
摘要
Human pose transfer synthesizes new view(s) of a person for a given pose. Recent work achieves this via self-reconstruction, which disentangles a person’s pose and texture information by breaking the person down into parts, then recombines them for reconstruction. However, part-level disentanglement preserves some pose information that can create unwanted artifacts. In this paper, we propose Pose Transfer by Permuting Textures (PT2), an approach for self-driven human pose transfer that disentangles pose from texture at the patch-level. Specifically, we remove pose from an input image by permuting image patches so only texture information remains. Then we reconstruct the input image by sampling from the permuted textures for patch-level disentanglement. To reduce noise and recover clothing shape information from the permuted patches, we employ encoders with multiple kernel sizes in a triple branch network. Extensive experiments on DeepFashion and Market-1501 PT2 reports significant gains on automatic metrics over other self-driven methods, and even outperforms some fully-supervised methods. A user study also reports images generated by our method are preferred in 68% of cases over self-driven approaches from prior work. Code is available at https://github.com/NannanLi999/pt_square
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引用它的顶会 Paper2
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它引用的顶会 Paper16
- ClothFlow: A Flow-Based Model for Clothed Person GenerationXintong Han, Weilin Huang, Xiaojun Hu, Matthew R. ScottICCV 2019 · 被引用 297 次
- VTNFP: An Image-Based Virtual Try-On Network With Body and Clothing Feature PreservationRuiyun Yu, Xiaoqi Wang, Xiaohui XieICCV 2019 · 被引用 184 次
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- Exploring Dual-task Correlation for Pose Guided Person Image GenerationPengze Zhang, Lingxiao Yang, Jianhuang Lai, Xiaohua XieCVPR 2022 · 被引用 92 次
- Neural Texture Extraction and Distribution for Controllable Person Image SynthesisYurui Ren, Xiaoqing Fan, Ge Li, Shan Liu 等CVPR 2022 · 被引用 81 次
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