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Person re-identification based on metric learning: a survey

机译:基于度量学习的人重新识别:调查

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摘要

Person re-identification is a challenging research issue in computer vision and has a broad application prospect in intelligent security. In recent years, with the emergence of large-scale person datasets and the rapid development of deep learning, many outstanding results have been achieved in person re-identification researches, which mainly involves two critical technologies: feature extraction and distance metric. Among them, feature extraction has been well summarized in the current literature of person re-identification, but there is no systematic analysis of the distance metric method in the current review literature. However, effective and reliable distance metric is crucial to improve the accuracy of person re-identification. Therefore, it is necessary to systematically review and summarize the metric learning methods in person re-identification, so as to provide some references for the researchers of metric learning. In this paper, we make a comprehensive analysis of metric learning methods in the past five years, which can be summarized into three aspects: distance metric method, metric learning algorithm, and re-ranking for the metric results. Then, we compare the performance of some representative metric learning methods and discuss them in-depth. Finally, we make a prospect for the future research direction of metric learning in person re-identification.
机译:人重新识别是计算机愿景中有挑战性的研究问题,在智能安全中具有广泛的应用前景。近年来,随着大规模人数数据集的出现和深度学习的快速发展,许多杰出的结果已经在重新识别研究中取得了良好的研究,这主要涉及两个关键技术:特征提取和距离度量。其中,特征提取在人们重新识别的当前文献中得到了很好的总结,但在当前审查文献中没有对距离度量方法的系统分析。然而,有效可靠的距离度量至关重要,以提高人员重新识别的准确性。因此,有必要系统地审查和总结人员重新识别的度量学习方法,以便为度量学习的研究人员提供一些引用。在本文中,我们在过去五年中对度量学习方法进行了全面的分析,可以概括为三个方面:距离度量方法,度量学习算法,并重新排名为度量结果。然后,我们比较一些代表性公制学习方法的性能并深入讨论它们。最后,我们为未来的公制学习方向进行了展望的人重新识别。

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