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Person re-identification for smart cities: State-of-the-art and the path ahead

机译:人员重新识别智能城市:最先进的和前方的道路

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摘要

One of the indispensable pillars of a smart city is its surveillance infrastructure, and it requires smart techniques to analyze the videos acquired from the surveillance cameras. Person re-identification (PRId) is one of the fundamental tasks in automated visual surveillance, and it has been an area of extensive research spanning the past decade. PRId aims at finding a person who has previously been seen or identified using some unique descriptor of the person. This survey comprises a broad spectrum of PRId methods spanning from traditional to deep-learning, being analyzed and compared. This survey also discusses various PRId frameworks based on machine learning and deep learning. This study emphasizes the challenges in building PRId systems for the benefits of smart cities and presents a critical overview of recent progress and the state-of-the-art approaches to solving some significant challenges of existing PRId systems. (C) 2020 Elsevier B.V. All rights reserved.
机译:智能城市的一个不可或缺的支柱之一是其监视基础设施,它需要智能技术来分析从监控摄像机获取的视频。人重新识别(PRID)是自动视觉监督的基本任务之一,它是过去十年的广泛研究领域。 PRID旨在找到以前使用该人的一些唯一描述符所见或识别的人。该调查包括从传统到深度学习的广泛的跨越跨越传统的方法,分析和比较。本调查还讨论了基于机器学习和深度学习的各种法律框架。本研究强调了建立智能城市福利的挑战,并提出了近期进步的关键概述,以及解决现有争议系统的一些重大挑战的最先进的方法。 (c)2020 Elsevier B.v.保留所有权利。

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