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Leveraging the Learnable Vertex-Vertex Relationship to Generalize Human Pose and Mesh Reconstruction for In-the-Wild Scenes

About

We present MeshLeTemp, a powerful method for 3D human pose and mesh reconstruction from a single image. In terms of human body priors encoding, we propose using a learnable template human mesh instead of a constant template as utilized by previous state-of-the-art methods. The proposed learnable template reflects not only vertex-vertex interactions but also the human pose and body shape, being able to adapt to diverse images. We conduct extensive experiments to show the generalizability of our method on unseen scenarios.

Trung Tran-Quang, Cuong Than-Cao, Hai Nguyen-Thanh, Hong Hoang Si• 2022

Related benchmarks

TaskDatasetResultRank
3D Human Pose and Shape Estimation3DPW
PA-MPJPE46.8
74
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