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Realtime Multi-person 2D Pose Estimation Using Part Affinity Fields

Zhe Cao; Tomas Simon; Shih-En Wei; Yaser Sheikh · OpenAlex · 2017

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We present an approach to efficiently detect the 2D pose of multiple people in an image. The approach uses a nonparametric representation, which we refer to as Part Affinity Fields (PAFs), to learn to associate body parts with individuals in the image. The architecture encodes global context, allowing a greedy bottom-up parsing step that maintains high accuracy while achieving realtime performance, irrespective of the number of people in the image. The architecture is designed to jointly learn part locations and their association via two branches of the same sequential prediction process. Our method placed first in the inaugural COCO 2016 keypoints challenge, and significantly exceeds the previous state-of-the-art result on the MPII Multi-Person benchmark, both in performance and efficiency.

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APA 7

Cao, Z, Simon, T, Wei, S. E, & Sheikh, Y. (2017). Realtime Multi-person 2D Pose Estimation Using Part Affinity Fields. OpenAlex. https://doi.org/10.1109/cvpr.2017.143

MLA

Cao, Zhe, et al. Realtime Multi-person 2D Pose Estimation Using Part Affinity Fields. OpenAlex, 2017. https://doi.org/10.1109/cvpr.2017.143.

Chicago

Cao, Zhe, Tomas Simon, Shih-En Wei, and Yaser Sheikh. 2017. Realtime Multi-person 2D Pose Estimation Using Part Affinity Fields. OpenAlex. https://doi.org/10.1109/cvpr.2017.143.

Harvard

Cao, Z. et al. 2017, Realtime Multi-person 2D Pose Estimation Using Part Affinity Fields, OpenAlex, available at: https://doi.org/10.1109/cvpr.2017.143 [Accessed 6 Aug. 2026].

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Title
Realtime Multi-person 2D Pose Estimation Using Part Affinity Fields
Author / contributors
Zhe Cao; Tomas Simon; Shih-En Wei; Yaser Sheikh
Publisher
OpenAlex
Publication year
2017
Language
English

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