3D Human Pose Estimation with Spatio-Temporal Criss-Cross Attention
Zhenhua Tang, Zhaofan Qiu, Yanbin Hao, Richang Hong, Ting Yao
摘要
Recent transformer-based solutions have shown great success in 3D human pose estimation. Nevertheless, to calculate the joint-to-joint affinity matrix, the computational cost has a quadratic growth with the increasing number of joints. Such drawback becomes even worse especially for pose estimation in a video sequence, which necessitates spatio-temporal correlation spanning over the entire video. In this paper, we facilitate the issue by decomposing correlation learning into space and time, and present a novel Spatio-Temporal Criss-cross attention (STC) block. Technically, STC first slices its input feature into two partitions evenly along the channel dimension, followed by performing spatial and temporal attention respectively on each partition. STC then models the interactions between joints in an identical frame and joints in an identical trajectory simultaneously by concatenating the outputs from attention layers. On this basis, we devise STCFormer by stacking multiple STC blocks and further integrate a new Structure-enhanced Positional Embedding (SPE) into STCFormer to take the structure of human body into consideration. The embedding function consists of two components: spatio-temporal convolution around neighboring joints to capture local structure, and part-aware embedding to indicate which part each joint belongs to. Extensive experiments are conducted on Human3.6M and MPI-INF-3DHP benchmarks, and superior results are reported when comparing to the state-ofthe-art approaches. More remarkably, STCFormer achieves to-date the best published performance: 40.5mm P1 error on the challenging Human3.6M dataset.
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引用它的顶会 Paper29
- KTPFormer: Kinematics and Trajectory Prior Knowledge-Enhanced Transformer for 3D Human Pose EstimationJihua Peng, Yanghong Zhou, P. Y. MokCVPR 2024 · 被引用 67 次
- Disentangled Diffusion-Based 3D Human Pose Estimation with Hierarchical Spatial and Temporal DenoiserQingyuan Cai, Xuecai Hu, Saihui Hou, Li Yao 等AAAI 2024 · 被引用 39 次
- TCPFormer: Learning Temporal Correlation with Implicit Pose Proxy for 3D Human Pose EstimationJiajie Liu, Mengyuan Liu, Hong Liu, Wenhao LiAAAI 2025 · 被引用 27 次
- Pose Magic: Efficient and Temporally Consistent Human Pose Estimation with a Hybrid Mamba-GCN NetworkXinyi Zhang, Qiqi Bao, Qinpeng Cui, Wenming Yang 等AAAI 2025 · 被引用 18 次
- PoseMamba: Monocular 3D Human Pose Estimation with Bidirectional Global-Local Spatio-Temporal State Space ModelYunlong Huang, Junshuo Liu, Ke Xian, Robert Caiming QiuAAAI 2025 · 被引用 15 次
它引用的顶会 Paper16
- An Image is Worth 16x16 Words: Transformers for Image Recognition at ScaleAlexey Dosovitskiy, Lucas Beyer, Alexander Kolesnikov, Dirk Weissenborn 等ICLR 2021 · 被引用 21,477 次
- 3D Human Pose Estimation with Spatial and Temporal TransformersCe Zheng, Sijie Zhu, Matías Mendieta, Taojiannan Yang 等ICCV 2021 · 被引用 648 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
- 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
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