Self-Supervised 3D Human Mesh Recovery from a Single Image with Uncertainty-Aware Learning
Guoli Yan, Zichun Zhong, Jing Hua
摘要
Despite achieving impressive improvement in accuracy, most existing monocular 3D human mesh reconstruction methods require large-scale 2D/3D ground-truths for supervision, which limits their applications on unlabeled in-the-wild data that is ubiquitous. To alleviate the reliance on 2D/3D ground-truths, we present a self-supervised 3D human pose and shape reconstruction framework that relies only on self-consistency between intermediate representations of images and projected 2D predictions. Specifically, we extract 2D joints and depth maps from monocular images as proxy inputs, which provides complementary clues to infer accurate 3D human meshes. Furthermore, to reduce the impacts from noisy and ambiguous inputs while better concentrate on the high-quality information, we design an uncertainty-aware module to automatically learn the reliability of the inputs at body-joint level based on the consistency between 2D joints and depth map. Experiments on benchmark datasets show that our approach outperforms other state-of-the-art methods at similar supervision levels.
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它引用的顶会 Paper8
- AMASS: Archive of Motion Capture As Surface ShapesNaureen Mahmood, Nima Ghorbani, Nikolaus F. Troje, Gerard Pons-Moll 等ICCV 2019 · 被引用 1,784 次
- Learning to Reconstruct 3D Human Pose and Shape via Model-Fitting in the LoopNikos Kolotouros, Georgios Pavlakos, Michael J. Black, Kostas DaniilidisICCV 2019 · 被引用 1,139 次
- PyMAF: 3D Human Pose and Shape Regression with Pyramidal Mesh Alignment Feedback LoopHongwen Zhang, Yating Tian, Xinchi Zhou, Wanli Ouyang 等ICCV 2021 · 被引用 376 次
- A Neural Network for Detailed Human Depth Estimation From a Single ImageSicong Tang, Feitong Tan, Kelvin Cheng, Zhaoyang Li 等ICCV 2019 · 被引用 46 次
- Aligning Silhouette Topology for Self-Adaptive 3D Human Pose RecoveryMugalodi Rakesh, Jogendra Nath Kundu, Varun Jampani, Venkatesh Babu R.NeurIPS 2021 · 被引用 12 次
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