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Identification of New Patterns in Urban Traffic Flows

机译:识别城市交通流量的新模式

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Traffic flow pattern identification, as well as anomaly detection, is known to be an important component for traffic operations and control. Alongside classical applications, mainly, to improve the safety and the comfort of drivers, more recently there is a growing interest in gathering personalised route information to provide customised services. With this latter application in mind, in this paper we investigate the ability of simple macroscopic information (i.e., time varying junction turning probabilities) to identify changes in nominal urban traffic flows, most likely due to the occurrence of external events (e.g., road works or traffic congestions). Some preliminary results obtained with the use of a realistic mobility simulator are also illustrated and discussed, and some candidate applications are briefly outlined.
机译:交通流模式识别以及异常检测是交通操作和控制的重要组成部分。除了经典的应用程序外,主要是为了提高驾驶员的安全性和舒适性,近来人们对收集个性化路线信息以提供定制服务的兴趣也越来越高。考虑到后者的应用,本文研究了简单的宏观信息(即时变路口转向概率)识别名义城市交通流量变化的能力,这很可能是由于外部事件(例如道路工程)的发生或交通拥堵)。还说明和讨论了使用现实的移动模拟器获得的一些初步结果,并简要概述了一些候选应用程序。

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