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Effective multi-shot person re-identification through representative frames selection and temporal feature pooling

机译:通过有代表性的帧选择和时间特征合并有效地进行多镜头人物重新识别

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摘要

Multi-shot person re-identification (ReID) is a popular case of person ReID in which a set of images are processed for each person. However, using entire image set for person ReID as most experimented proposals is not always effective because of time and memory consuming. The main contribution of this work is the proposed strategies for (1) choosing representative image frames for each individual instead of entire set of frames, and (2) temporal feature pooling in multi-shot person ReID. These strategies are efficiently integrated in a person ReID framework which uses GoG (Gaussian of Gaussian) and XQDA (metric learning Cross-view Quadratic Discriminant Analysis) for person representation and matching. The effectiveness of the proposed framework on two benchmark datasets (PRID 2011 and iLIDS-VID) in terms of re-identification accuracy, computational time, and storage requirements are deeply investigated and analyzed. The experimental results allow to provide several recommendations on the use of these schemes based on the characteristics of the working dataset and the requirement of the applications. Furthermore, the study also offers a desktop-based application for person search and ReID. The implementation of the proposed framework will be made publicly available.
机译:连拍人物重新识别(ReID)是人物ReID的一种常见情况,其中为每个人物处理一组图像。但是,将整个人ReID的图像集用作大多数实验方案并不总是有效的,因为它会浪费时间和内存。这项工作的主要贡献是提出了以下策略:(1)为每个人选择代表性图像帧,而不是整个帧集;(2)多人ReID中的时间特征池。这些策略有效地集成在使用GoG(高斯的高斯)和XQDA(度量学习交叉视图二次判别分析)的人ReID框架中,以进行人的表示和匹配。深入研究并分析了在两个基准数据集(PRID 2011和iLIDS-VID)上提出的框架的有效性,包括重新识别的准确性,计算时间和存储需求。实验结果允许根据工作数据集的特征和应用程序的需求为使用这些方案提供一些建议。此外,该研究还提供了基于桌面的应用程序,用于人员搜索和ReID。拟议框架的实施将公开提供。

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