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Learning Locally-Adaptive Decision Functions for Person Verification

Published: 23 June 2013 Publication History

Abstract

This paper considers the person verification problem in modern surveillance and video retrieval systems. The problem is to identify whether a pair of face or human body images is about the same person, even if the person is not seen before. Traditional methods usually look for a distance (or similarity) measure between images (e.g., by metric learning algorithms), and make decisions based on a fixed threshold. We show that this is nevertheless insufficient and sub-optimal for the verification problem. This paper proposes to learn a decision function for verification that can be viewed as a joint model of a distance metric and a locally adaptive thresholding rule. We further formulate the inference on our decision function as a second-order large-margin regularization problem, and provide an efficient algorithm in its dual from. We evaluate our algorithm on both human body verification and face verification problems. Our method outperforms not only the classical metric learning algorithm including LMNN and ITML, but also the state-of-the-art in the computer vision community.

Cited By

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  • (2023)Neural Architectures for Feature Embedding in Person Re-Identification: A Comparative ViewACM Transactions on Intelligent Systems and Technology10.1145/361029814:5(1-21)Online publication date: 9-Oct-2023
  • (2020)MAENet: Boosting Feature Representation for Cross-Modal Person Re-Identification with Pairwise SupervisionProceedings of the 2020 International Conference on Multimedia Retrieval10.1145/3372278.3390699(442-449)Online publication date: 8-Jun-2020
  • (2019)A Systematic Evaluation and Benchmark for Person Re-IdentificationIEEE Transactions on Pattern Analysis and Machine Intelligence10.1109/TPAMI.2018.280745041:3(523-536)Online publication date: 1-Mar-2019
  • Show More Cited By
  1. Learning Locally-Adaptive Decision Functions for Person Verification

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    Information & Contributors

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    Published In

    cover image Guide Proceedings
    CVPR '13: Proceedings of the 2013 IEEE Conference on Computer Vision and Pattern Recognition
    June 2013
    3752 pages
    ISBN:9780769549897

    Publisher

    IEEE Computer Society

    United States

    Publication History

    Published: 23 June 2013

    Author Tags

    1. Face Verification
    2. Pedestrian Re-identification
    3. Person Verification

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    Cited By

    View all
    • (2023)Neural Architectures for Feature Embedding in Person Re-Identification: A Comparative ViewACM Transactions on Intelligent Systems and Technology10.1145/361029814:5(1-21)Online publication date: 9-Oct-2023
    • (2020)MAENet: Boosting Feature Representation for Cross-Modal Person Re-Identification with Pairwise SupervisionProceedings of the 2020 International Conference on Multimedia Retrieval10.1145/3372278.3390699(442-449)Online publication date: 8-Jun-2020
    • (2019)A Systematic Evaluation and Benchmark for Person Re-IdentificationIEEE Transactions on Pattern Analysis and Machine Intelligence10.1109/TPAMI.2018.280745041:3(523-536)Online publication date: 1-Mar-2019
    • (2019)On Low-Resolution Face Recognition in the WildIEEE Transactions on Information Forensics and Security10.1109/TIFS.2018.289081214:8(2000-2012)Online publication date: 1-Aug-2019
    • (2019)Distributed person re-identification through network-wise rank fusion consensusPattern Recognition Letters10.1016/j.patrec.2018.12.015124:C(63-73)Online publication date: 1-Jun-2019
    • (2019)Body Part-Based Person Re-identification Integrating Semantic AttributesNeural Processing Letters10.1007/s11063-018-9887-449:3(1111-1124)Online publication date: 1-Jun-2019
    • (2019)QRKISSNeural Processing Letters10.1007/s11063-018-9820-x49:3(899-922)Online publication date: 1-Jun-2019
    • (2019)Re-ranking pedestrian re-identification with multiple MetricsMultimedia Tools and Applications10.1007/s11042-018-6654-578:9(11631-11653)Online publication date: 1-May-2019
    • (2019)Deep learning with particle filter for person re-identificationMultimedia Tools and Applications10.1007/s11042-018-6415-578:6(6607-6636)Online publication date: 1-Mar-2019
    • (2019)Deep salient-Gaussian Fisher vector encoding of the spatio-temporal trajectory structures for person re-identificationMultimedia Tools and Applications10.1007/s11042-018-6200-578:2(1583-1611)Online publication date: 1-Jan-2019
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