Removing the Bias of Integral Pose Regression
Kerui Gu, Linlin Yang, Angela Yao
Abstract
Heatmap-based detection methods are dominant for 2D human pose estimation even though regression is more intuitive. The introduction of the integral regression method, which, architecture-wise uses an implicit heatmap, brings the two approaches even closer together. This begs the question – does detection really outperform regression? In this paper, we investigate the difference in supervision between the heatmap-based detection and integral regression, as this is the key remaining difference between the two approaches. In the process, we discover an underlying bias behind integral pose regression that arises from taking the expectation after the softmax function. To counter the bias, we present a compensation method which we find to improve integral regression accuracy on all 2D pose estimation benchmarks. We further propose a simple combined detection and bias-compensated regression method that considerably outperforms state-of-the-art baselines with few added components.
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Install the CLIlune papers fulltext aadd7d32-a08a-42db-b6f9-6e1a62c54f58Cited by top-tier papers11
- Heatmap Distribution Matching for Human Pose EstimationHaoxuan Qu, Li Xu, Yujun Cai, Lin Geng Foo et al.NeurIPS 2022 · 25 citations
- Dive Deeper Into Integral Pose RegressionKerui Gu, Linlin Yang, Angela YaoICLR 2022 · 17 citations
- MHEntropy: Entropy Meets Multiple Hypotheses for Pose and Shape RecoveryRongyu Chen, Linlin Yang, Angela YaoICCV 2023 · 13 citations
- On the Calibration of Human Pose EstimationKerui Gu, Rongyu Chen, Xuanlong Yu, Angela YaoICML 2024 · 11 citations
- Improving Deep Regression with Ordinal EntropyShihao Zhang, Linlin Yang, Michael Bi Mi, Xiaoxu Zheng et al.ICLR 2023 · 9 citations
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