ActiveMoCap: Optimized Viewpoint Selection for Active Human Motion Capture
Sena Kiciroglu, Helge Rhodin, Sudipta N. Sinha, Mathieu Salzmann, Pascal Fua
摘要
The accuracy of monocular 3D human pose estimation depends on the viewpoint from which the image is captured. While freely moving cameras, such as on drones, provide control over this viewpoint, automatically positioning them at the location which will yield the highest accuracy remains an open problem. This is the problem that we address in this paper. Specifically, given a short video sequence, we introduce an algorithm that predicts which viewpoints should be chosen to capture future frames so as to maximize 3D human pose estimation accuracy. The key idea underlying our approach is a method to estimate the uncertainty of the 3D body pose estimates. We integrate several sources of uncertainty, originating from deep learning based regressors and temporal smoothness. Our motion planner yields improved 3D body pose estimates and outperforms or matches existing ones that are based on person following and orbiting.
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引用它的顶会 Paper3
- Learning Motion Priors for 4D Human Body Capture in 3D ScenesSiwei Zhang, Yan Zhang, Federica Bogo, Marc Pollefeys 等ICCV 2021 · 被引用 117 次
- FLAR: A Unified Prototype Framework for Few-sample Lifelong Active RecognitionLei Fan, Peixi Xiong, Wei Wei, Ying WuICCV 2021 · 被引用 9 次
- GraMMaR: Ground-aware Motion Model for 3D Human Motion ReconstructionSihan Ma, Qiong Cao, Hongwei Yi, Jing Zhang 等ACM MM 2023 · 被引用 3 次
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