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Feature Extraction Methods in Person Re-identification System: A Technical Review

机译:人员重新识别系统中的特征提取方法:技术综述

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Intelligent surveillance is an emerging research area in the field of computer vision. Person re-identification is one among the tools involved in intelligent surveillance. Person re-identification is used to recognize and identify a person of interest captured by different surveillance cameras at different times and at different locations, when an input image is given. Automation of person re-identification is difficult in real time due to changes in pose, background, illumination and occlusion. Recent researchers have focused on developing discriminant, robust features, learning distance metric models or fusion of both for matching between the images of person. Our main objective is to provide the future researchers the importance of various state-of-the-art feature extraction techniques and deep learning approaches used in person re-identification, till date. Different algorithms with their strengths and accuracy percentage were summarized in a comparison table. Finally, unsolved problems in person re-id were listed that can be used as guidelines for future research.
机译:智能监控是计算机视觉领域中一个新兴的研究领域。人员重新识别是智能监视中涉及的工具之一。当给出输入图像时,人员重新识别用于识别和识别由不同的监视摄像机在不同的时间和不同的位置捕获的感兴趣的人员。由于姿势,背景,照明和遮挡的变化,实时实现人员重新识别的自动化非常困难。最近的研究人员专注于开发判别,鲁棒的功能,学习距离度量模型或两者的融合,以在人的图像之间进行匹配。到目前为止,我们的主要目标是向未来的研究人员提供在人员重新识别中使用的各种最新特征提取技术和深度学习方法的重要性。在比较表中总结了不同算法的优势和准确性百分比。最后,列出了未解决的个人身份证件问题,可以将其用作未来研究的指南。

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