Papers › MultiPoseNet: Fast Multi-Person Pose Estimation using Pose Residual Network

MultiPoseNet: Fast Multi-Person Pose Estimation using Pose Residual Network

11 Jul 2018ECCV 2018 9arXiv:1807.04067archive 2025-07-28

Muhammed Kocabas, Salih Karagoz, Emre Akbas

In this paper, we present MultiPoseNet, a novel bottom-up multi-person pose estimation architecture that combines a multi-task model with a novel assignment method. MultiPoseNet can jointly handle person detection, keypoint detection, person segmentation and pose estimation problems. The novel assignment method is implemented by the Pose Residual Network (PRN) which receives keypoint and person detections, and produces accurate poses by assigning keypoints to person instances. On the COCO keypoints dataset, our pose estimation method outperforms all previous bottom-up methods both in accuracy (+4-point mAP over previous best result) and speed; it also performs on par with the best top-down methods while being at least 4x faster. Our method is the fastest real time system with 23 frames/sec. Source code is available at: https://github.com/mkocabas/pose-residual-network

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eric-erki/pose-residual-network-pytorch mentioned on GitHubpytorch report

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Tasks

Human DetectionKeypoint DetectionMulti-Person Pose EstimationPose Estimation

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Keypoint Detection COCO (Common Objects in Context) Pose Residual Network Validation AP 69.6 #23 of 24 Archive leaderboard report
Multi-Person Pose Estimation COCO (Common Objects in Context) Pose Residual Network AP 0.697 #8 of 15 Archive leaderboard report

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