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首页> 外文期刊>IEEE Transactions on Circuits and Systems for Video Technology >Person Reidentification With Reference Descriptor
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Person Reidentification With Reference Descriptor

机译:具有参考描述符的人员识别

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摘要

Person identification across nonoverlapping cameras, also known as person reidentification, aims to match people at different times and locations. Reidentifying people is of great importance in crucial applications such as wide-area surveillance and visual tracking. Due to the appearance variations in pose, illumination, and occlusion in different camera views, person reidentification is inherently difficult. To address these challenges, a reference-based method is proposed for person reidentification across different cameras. Instead of directly matching people by their appearance, the matching is conducted in a reference space where the descriptor for a person is translated from the original color or texture descriptors to similarity measures between this person and the exemplars in the reference set. A subspace is first learned in which the correlations of the reference data from different cameras are maximized using regularized canonical correlation analysis (RCCA). For reidentification, the gallery data and the probe data are projected onto this RCCA subspace and the reference descriptors (RDs) of the gallery and probe are generated by computing the similarity between them and the reference data. The identity of a probe is determined by comparing the RD of the probe and the RDs of the gallery. A reranking step is added to further improve the results using a saliency-based matching scheme. Experiments on publicly available datasets show that the proposed method outperforms most of the state-of-the-art approaches.
机译:非重叠摄像机上的人员识别(也称为人员识别)旨在匹配不同时间和位置的人员。在诸如广域监视和视觉跟踪之类的关键应用中,对人员进行重新标识非常重要。由于在不同的相机视图中姿势,照明和遮挡的外观变化,人的识别固有地困难。为了解决这些挑战,提出了一种基于参考的方法,用于跨不同摄像机的人员识别。匹配不是在外观上直接匹配人,而是在参考空间中进行,其中人的描述符从原始颜色或纹理描述符转换为该人与参考集中的示例之间的相似性度量。首先学习一个子空间,其中使用正则化规范相关分析(RCCA)最大化来自不同相机的参考数据的相关性。为了进行重新标识,将图库数据和探针数据投影到此RCCA子空间上,并通过计算它们与参考数据之间的相似度来生成图库和探针的参考描述符(RD)。探针的身份是通过比较探针的RD和通道的RD来确定的。添加了重新排序步骤,以使用基于显着性的匹配方案进一步改善结果。在公开数据集上进行的实验表明,所提出的方法优于大多数最新方法。

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