CVApr 15, 2024

Clothes-Changing Person Re-Identification with Feasibility-Aware Intermediary Matching

arXiv:2404.09507v28 citationsh-index: 32IEEE transactions on multimedia
Originality Incremental advance
AI Analysis

This addresses a specific challenge in surveillance and security for person re-identification, offering an incremental improvement by better utilizing existing feature types.

The paper tackles the problem of person re-identification when clothing changes, proposing a framework that uses both clothes-relevant and clothes-irrelevant features to improve retrieval by finding informative intermediaries, and it demonstrates superior performance over state-of-the-art methods on multiple benchmarks.

Current clothes-changing person re-identification (re-id) approaches usually perform retrieval based on clothes-irrelevant features, while neglecting the potential of clothes-relevant features. However, we observe that relying solely on clothes-irrelevant features for clothes-changing re-id is limited, since they often lack adequate identity information and suffer from large intra-class variations. On the contrary, clothes-relevant features can be used to discover same-clothes intermediaries that possess informative identity clues. Based on this observation, we propose a Feasibility-Aware Intermediary Matching (FAIM) framework to additionally utilize clothes-relevant features for retrieval. Firstly, an Intermediary Matching (IM) module is designed to perform an intermediary-assisted matching process. This process involves using clothes-relevant features to find informative intermediates, and then using clothes-irrelevant features of these intermediates to complete the matching. Secondly, in order to reduce the negative effect of low-quality intermediaries, an Intermediary-Based Feasibility Weighting (IBFW) module is designed to evaluate the feasibility of intermediary matching process by assessing the quality of intermediaries. Extensive experiments demonstrate that our method outperforms state-of-the-art methods on several widely-used clothes-changing re-id benchmarks.

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