Interacting Attention Graph for Single Image Two-Hand Reconstruction
Mengcheng Li, Liang An, Hongwen Zhang, Lianpeng Wu, Feng Chen, Tao Yu, Yebin Liu
摘要
Graph convolutional network (GCN) has achieved great success in single hand reconstruction task, while interacting two-hand reconstruction by GCN remains unexplored. In this paper, we present Interacting Attention Graph Hand (IntagHand), the first graph convolution based network that reconstructs two interacting hands from a single RGB image. To solve occlusion and interaction challenges of two-hand reconstruction, we introduce two novel attention based modules in each upsampling step of the original GCN. The first module is the pyramid image feature attention (PIFA) module, which utilizes multiresolution features to implicitly obtain vertex-to-image alignment. The second module is the cross hand attention (CHA) module that encodes the coherence of interacting hands by building dense cross-attention between two hand vertices. As a result, our model outperforms all existing two-hand re-construction methods by a large margin on InterHand2.6M benchmark. Moreover, ablation studies verify the effectiveness of both PIFA and CHA modules for improving the reconstruction accuracy. Results on in-the-wild images and live video streams further demonstrate the generalization ability of our network. Our code is available at https://github.com/Dw1010/IntagHand.
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引用它的顶会 Paper44
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- Decoupled Iterative Refinement Framework for Interacting Hands Reconstruction from a Single RGB ImagePengfei Ren, Chao Wen, Xiaozheng Zheng, Zhou Xue 等ICCV 2023 · 被引用 15 次
它引用的顶会 Paper16
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- End-to-End Hand Mesh Recovery From a Monocular RGB ImageXiong Zhang, Qiang Li, Hong Mo, Wenbo Zhang 等ICCV 2019 · 被引用 248 次
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