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Joint deep semantic embedding and metric learning for person re-identification

机译:联合深度语义嵌入和度量学习,用于人员重新识别

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摘要

We focus on the person re-identification (re-id) task, whose goal is to automatically re-identify individual persons from multiple non-overlapping cameras or the same camera across time. While most existing works rely on exploring properties of the visual data, we consider taking advantage of both visual and textual representations. Given images and natural language descriptions of the persons in the probe, the re-id system is required to rank all the samples in the gallery set. We embed the visual representations and textual descriptions in a unified space, in which we map similar examples close to each other and map dissimilar examples farther apart. Our premise is that, in general, strong semantic correlations exist between different persons. The space casts a person in gallery set as a combination of the persons in probe set. The model is trained in an end-to-end fashion. We conduct extensive experiments on the challenging i-LIDS, PRID-2011, CUHK03 and Market-1501 datasets, and confirm that the proposed model achieves state-of-the-art performances. (C) 2018 Elsevier B.V. All rights reserved.
机译:我们专注于人员重新识别(re-id)任务,其目标是跨时间自动从多个不重叠的摄像机或同一摄像机自动重新识别个人。虽然大多数现有作品都依赖于探索视觉数据的属性,但我们考虑同时利用视觉和文本表示。给定探针中人员的图像和自然语言描述,需要re-id系统对画廊集中的所有样本进行排名。我们将视觉表示和文本描述嵌入一个统一的空间,在该空间中,我们将相似的示例相互映射,而将相异的示例相互映射。我们的前提是,通常,不同的人之间存在很强的语义相关性。该空间将画廊中的人投下为探针中人的组合。该模型以端到端的方式进行训练。我们对具有挑战性的i-LIDS,PRID-2011,CUHK03和Market-1501数据集进行了广泛的实验,并证实了所提出的模型能够达到最新的性能。 (C)2018 Elsevier B.V.保留所有权利。

著录项

  • 来源
    《Pattern recognition letters》 |2020年第2期|306-311|共6页
  • 作者

  • 作者单位

    Xian Univ Finance & Econ China XiAn Inst Silk Rd Res 2 WeiChang Rd Xian 710100 Peoples R China;

    Northwestern Polytech Univ Sch Comp Sci 127 West Youyi Rd Xian 710072 Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Person re-identification; Video re-id; Deep metric learning;

    机译:人员重新识别;影片重新编号;深度度量学习;

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