Deep Image Spatial Transformation for Person Image Generation
Yurui Ren, Xiaoming Yu, Junming Chen, Thomas H. Li, Ge Li
摘要
Pose-guided person image generation is to transform a source person image to a target pose. This task requires spatial manipulations of source data. However, Convolutional Neural Networks are limited by the lack of ability to spatially transform the inputs. In this paper, we propose a differentiable global-flow local-attention framework to reassemble the inputs at the feature level. Specifically, our model first calculates the global correlations between sources and targets to predict flow fields. Then, the flowed local patch pairs are extracted from the feature maps to calculate the local attention coefficients. Finally, we warp the source features using a content-aware sampling method with the obtained local attention coefficients. The results of both subjective and objective experiments demonstrate the superiority of our model. Besides, additional results in video animation and view synthesis show that our model is applicable to other tasks requiring spatial transformation. Our source code is available at https://github.com/RenYurui/ Global-Flow-Local-Attention .
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引用它的顶会 Paper61
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它引用的顶会 Paper5
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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 等ICCV 2019 · 被引用 285 次
- Linearized Multi-Sampling for Differentiable Image TransformationWei Jiang, Weiwei Sun, Andrea Tagliasacchi, Eduard Trulls 等ICCV 2019 · 被引用 24 次
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