Learning Concordant Attention via Target-aware Alignment for Visible-Infrared Person Re-identification
Jianbing Wu, Hong Liu, Yuxin Su, Wei Shi, Hao Tang
Abstract
Owing to the large distribution gap between the heterogeneous data in Visible-Infrared Person Re-identification (VI Re-ID), we point out that existing paradigms often suffer from the inter-modal semantic misalignment issue and thus fail to align and compare local details properly. In this paper, we present Concordant Attention Learning (CAL), a novel framework that learns semantic-aligned representations for VI Re-ID. Specifically, we design the Target-aware Concordant Alignment paradigm, which allows target-aware attention adaptation when aligning heterogeneous samples (i.e., adaptive attention adjustment according to the target image being aligned). This is achieved by exploiting the discriminative clues from the modality counterpart and designing effective modality-agnostic correspondence searching strategies. To ensure semantic concordance during the cross-modal retrieval stage, we further propose MatchDistill, which matches the attention patterns across modalities and learns their underlying semantic correlations by bipartite-graph-based similarity modeling and cross-modal knowledge exchange. Extensive experiments on VI Re-ID benchmark datasets demonstrate the effectiveness and superiority of the proposed CAL.
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Install the CLIlune papers fulltext 4f991b3e-c2dc-471e-b4df-46242b74be08Cited by top-tier papers6
- Learning Commonality, Divergence and Variety for Unsupervised Visible-Infrared Person Re-identificationJiangming Shi, Xiangbo Yin, Yachao Zhang, Zhizhong Zhang et al.NeurIPS 2024 · 36 citations
- Robust Pseudo-label Learning with Neighbor Relation for Unsupervised Visible-Infrared Person Re-IdentificationXiangbo Yin, Jiangming Shi, Yachao Zhang, Yang Lu et al.ACM MM 2024 · 28 citations
- BIT: Matching-based Bi-directional Interaction Transformation Network for Visible-Infrared Person Re-IdentificationHaoxuan Xu, Guanglin NiuCVPR 2026 · 3 citations
- Projecting Trackable Thermal Patterns for Dynamic Computer VisionMark Sheinin, Aswin C. Sankaranarayanan, Srinivasa G. NarasimhanCVPR 2024 · 3 citations
- Augmented and Softened Matching for Unsupervised Visible-Infrared Person Re-IdentificationZhiqi Pang, Chunyu Wang, Lingling Zhao, Junjie WangICCV 2025 · 3 citations
Builds on14
- TransReID: Transformer-based Object Re-IdentificationShuting He, Hao Luo, Pichao Wang, Fan Wang et al.ICCV 2021 · 1,172 citations
- Pose-Guided Feature Alignment for Occluded Person Re-IdentificationJiaxu Miao, Yu Wu, Ping Liu, Yuhang Ding et al.ICCV 2019 · 589 citations
- RGB-Infrared Cross-Modality Person Re-Identification via Joint Pixel and Feature AlignmentGuan'an Wang, Tianzhu Zhang, Jian Cheng, Si Liu et al.ICCV 2019 · 464 citations
- Channel Augmented Joint Learning for Visible-Infrared RecognitionMang Ye, Weijian Ruan, Bo Du, Mike Zheng ShouICCV 2021 · 310 citations
- FMCNet: Feature-Level Modality Compensation for Visible-Infrared Person Re-IdentificationQiang Zhang, Changzhou Lai, Jianan Liu, Nianchang Huang et al.CVPR 2022 · 257 citations
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