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Single-Network Whole-Body Pose Estimation
[article]
2019
arXiv
pre-print
We present the first single-network approach for 2D whole-body pose estimation, which entails simultaneous localization of body, face, hands, and feet keypoints. Due to the bottom-up formulation, our method maintains constant real-time performance regardless of the number of people in the image. The network is trained in a single stage using multi-task learning, through an improved architecture which can handle scale differences between body/foot and face/hand keypoints. Our approach
arXiv:1909.13423v1
fatcat:gswjhtdvkzf6ziorry6owakmfa