PoseAug: A Differentiable Pose Augmentation Framework for 3D Human Pose Estimation
Kehong Gong, Jianfeng Zhang, Jiashi Feng
摘要
Existing 3D human pose estimators suffer poor generalization performance to new datasets, largely due to the limited diversity of 2D-3D pose pairs in the training data. To address this problem, we present PoseAug, a new autoaugmentation framework that learns to augment the available training poses towards a greater diversity and thus improve generalization of the trained 2D-to-3D pose estimator. Specifically, PoseAug introduces a novel pose augmentor that learns to adjust various geometry factors (e.g., posture, body size, view point and position) of a pose through differentiable operations. With such differentiable capacity, the augmentor can be jointly optimized with the 3D pose estimator and take the estimation error as feedback to generate more diverse and harder poses in an online manner. Moreover, PoseAug introduces a novel part-aware Kinematic Chain Space for evaluating local joint-angle plausibility and develops a discriminative module accordingly to ensure the plausibility of the augmented poses. These elaborate designs enable PoseAug to generate more diverse yet plausible poses than existing offline augmentation methods, and thus yield better generalization of the pose estimator. PoseAug is generic and easy to be applied to various 3D pose estimators. Extensive experiments demonstrate that PoseAug brings clear improvements on both intra-scenario and cross-scenario datasets. Notably, it achieves 88.6% 3D PCK on MPI-INF-3DHP under cross-dataset evaluation setup, improving upon the previous best data augmentation based method [22] by 9.1%. Code can be found at: https://github.com/jfzhang95/PoseAug.
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引用它的顶会 Paper32
- MHFormer: Multi-Hypothesis Transformer for 3D Human Pose EstimationWenhao Li, Hong Liu, Hao Tang, Pichao Wang 等CVPR 2022 · 被引用 403 次
- MixSTE: Seq2seq Mixed Spatio-Temporal Encoder for 3D Human Pose Estimation in VideoJinlu Zhang, Zhigang Tu, Jianyu Yang, Yujin Chen 等CVPR 2022 · 被引用 356 次
- Direct Multi-view Multi-person 3D Pose EstimationTao Wang, Jianfeng Zhang, Yujun Cai, Shuicheng Yan 等NeurIPS 2021 · 被引用 147 次
- GLA-GCN: Global-local Adaptive Graph Convolutional Network for 3D Human Pose Estimation from Monocular VideoBruce X. B. Yu, Zhi Zhang, Yongxu Liu, Sheng-Hua Zhong 等ICCV 2023 · 被引用 131 次
- ArtiBoost: Boosting Articulated 3D Hand-Object Pose Estimation via Online Exploration and SynthesisLixin Yang, Kailin Li, Xinyu Zhan, Jun Lv 等CVPR 2022 · 被引用 82 次
它引用的顶会 Paper12
- 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
- Exploiting Spatial-Temporal Relationships for 3D Pose Estimation via Graph Convolutional NetworksYujun Cai, Liuhao Ge, Jun Liu, Jianfei Cai 等ICCV 2019 · 被引用 504 次
- Camera Distance-Aware Top-Down Approach for 3D Multi-Person Pose Estimation From a Single RGB ImageGyeongsik Moon, Ju Yong Chang, Kyoung Mu LeeICCV 2019 · 被引用 368 次
- Optimizing Network Structure for 3D Human Pose EstimationHai Ci, Chunyu Wang, Xiaoxuan Ma, Yizhou WangICCV 2019 · 被引用 267 次
- Single-Stage Multi-Person Pose MachinesXuecheng Nie, Jiashi Feng, Jianfeng Zhang, Shuicheng YanICCV 2019 · 被引用 246 次
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