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Exploring Shape Embedding for Cloth-Changing Person Re-Identification via 2D-3D Correspondences

Published: 27 October 2023 Publication History

Abstract

Cloth-Changing Person Re-Identification (CC-ReID) is a common and realistic problem since fashion constantly changes over time and people's aesthetic preferences are not set in stone. While most existing cloth-changing ReID methods focus on learning cloth-agnostic identity representations from coarse semantic cues (e.g. silhouettes and part segmentation maps), they neglect the continuous shape distributions at the pixel level. In this paper, we propose Continuous Surface Correspondence Learning (CSCL), a new shape embedding paradigm for cloth-changing ReID. CSCL establishes continuous correspondences between a 2D image plane and a canonical 3D body surface via pixel-to-vertex classification, which naturally aligns a person image to the surface of a 3D human model and simultaneously obtains pixel-wise surface embeddings. We further extract fine-grained shape features from the learned surface embeddings and then integrate them with global RGB features via a carefully designed cross-modality fusion module. The shape embedding paradigm based on 2D-3D correspondences remarkably enhances the model's global understanding of human body shape. To promote the study of ReID under clothing change, we construct 3D Dense Persons (DP3D), which is the first large-scale cloth-changing ReID dataset that provides densely annotated 2D-3D correspondences and a precise 3D mesh for each person image, while containing diverse cloth-changing cases over all four seasons. Experiments on both cloth-changing and cloth-consistent ReID benchmarks validate the effectiveness of our method.

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In this presentation video, we discuss the background, motivation, dataset, algorithm, and experimental validation of our work. We hope that this video can help you better understand our work.

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Cited By

View all
  • (2024)Disentangling Identity Features from Interference Factors for Cloth-Changing Person Re-identificationProceedings of the 32nd ACM International Conference on Multimedia10.1145/3664647.3680823(2252-2261)Online publication date: 28-Oct-2024
  • (2024)Exploring Fine-Grained Representation and Recomposition for Cloth-Changing Person Re-IdentificationIEEE Transactions on Information Forensics and Security10.1109/TIFS.2024.341466719(6280-6292)Online publication date: 14-Jun-2024

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  1. Exploring Shape Embedding for Cloth-Changing Person Re-Identification via 2D-3D Correspondences

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      cover image ACM Conferences
      MM '23: Proceedings of the 31st ACM International Conference on Multimedia
      October 2023
      9913 pages
      ISBN:9798400701085
      DOI:10.1145/3581783
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      Published: 27 October 2023

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      Author Tags

      1. 2d-3d correspondences
      2. cloth-changing person re-identification
      3. cross-modality fusion
      4. large-scale dataset
      5. shape embedding

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      MM '23: The 31st ACM International Conference on Multimedia
      October 29 - November 3, 2023
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      View all
      • (2024)Disentangling Identity Features from Interference Factors for Cloth-Changing Person Re-identificationProceedings of the 32nd ACM International Conference on Multimedia10.1145/3664647.3680823(2252-2261)Online publication date: 28-Oct-2024
      • (2024)Exploring Fine-Grained Representation and Recomposition for Cloth-Changing Person Re-IdentificationIEEE Transactions on Information Forensics and Security10.1109/TIFS.2024.341466719(6280-6292)Online publication date: 14-Jun-2024

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