Papers › Pose-driven Deep Convolutional Model for Person Re-identification

Pose-driven Deep Convolutional Model for Person Re-identification

25 Sep 2017ICCV 2017 10arXiv:1709.08325archive 2025-07-28

Chi Su, Jianing Li, Shiliang Zhang, Junliang Xing, Wen Gao, Qi Tian

Feature extraction and matching are two crucial components in person Re-Identification (ReID). The large pose deformations and the complex view variations exhibited by the captured person images significantly increase the difficulty of learning and matching of the features from person images. To overcome these difficulties, in this work we propose a Pose-driven Deep Convolutional (PDC) model to learn improved feature extraction and matching models from end to end. Our deep architecture explicitly leverages the human part cues to alleviate the pose variations and learn robust feature representations from both the global image and different local parts. To match the features from global human body and local body parts, a pose driven feature weighting sub-network is further designed to learn adaptive feature fusions. Extensive experimental analyses and results on three popular datasets demonstrate significant performance improvements of our model over all published state-of-the-art methods.

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Person Re-Identification

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Person Re-Identification Market-1501 PDF Rank-1 84.14 #107 of 135 Archive leaderboard report
Person Re-Identification Market-1501 PDF mAP 63.41 #107 of 135 Archive leaderboard report

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