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Learning Modal-Invariant and Temporal-Memory for Video-based Visible-Infrared Person Re-Identification (2208.02450v1)

Published 4 Aug 2022 in cs.CV

Abstract: Thanks for the cross-modal retrieval techniques, visible-infrared (RGB-IR) person re-identification (Re-ID) is achieved by projecting them into a common space, allowing person Re-ID in 24-hour surveillance systems. However, with respect to the probe-to-gallery, almost all existing RGB-IR based cross-modal person Re-ID methods focus on image-to-image matching, while the video-to-video matching which contains much richer spatial- and temporal-information remains under-explored. In this paper, we primarily study the video-based cross-modal person Re-ID method. To achieve this task, a video-based RGB-IR dataset is constructed, in which 927 valid identities with 463,259 frames and 21,863 tracklets captured by 12 RGB/IR cameras are collected. Based on our constructed dataset, we prove that with the increase of frames in a tracklet, the performance does meet more enhancement, demonstrating the significance of video-to-video matching in RGB-IR person Re-ID. Additionally, a novel method is further proposed, which not only projects two modalities to a modal-invariant subspace, but also extracts the temporal-memory for motion-invariant. Thanks to these two strategies, much better results are achieved on our video-based cross-modal person Re-ID. The code and dataset are released at: https://github.com/VCMproject233/MITML.

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Authors (8)
  1. Xinyu Lin (24 papers)
  2. Jinxing Li (22 papers)
  3. Zeyu Ma (20 papers)
  4. Huafeng Li (26 papers)
  5. Shuang Li (203 papers)
  6. Kaixiong Xu (3 papers)
  7. Guangming Lu (49 papers)
  8. David Zhang (83 papers)
Citations (33)