Traffic State Information Extraction Methods Based on Granular Computing

Xiaofeng Ji, Wei Cheng, J. Yang
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Abstract

In order to extract traffic state information and provide decision support for traffic management, Granular computing theory was applied in traffic information processing. Traffic information granule and its granularity were defined, and then a methodology that provides a framework of traffic management and decision-making was presented based on GrC. A method was proposed for traffic state information granule construction based on vague sets, and then travel state identification model was proposed based on traffic state information granule similarity. The methods of traffic state information granule construction and their granularity were discussed based on a demonstration network in detail. The results show that the existing traffic information processing methods could be integrated based on GrC, and the proposed methodology can satisfy the demand of traffic management decision-making.
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基于颗粒计算的交通状态信息提取方法
为了提取交通状态信息,为交通管理提供决策支持,将颗粒计算理论应用于交通信息处理。定义了交通信息颗粒及其粒度,提出了一种基于GrC的交通管理与决策框架方法。提出了一种基于模糊集的交通状态信息粒构建方法,在此基础上提出了基于交通状态信息粒相似度的出行状态识别模型。在一个示范网络的基础上,详细讨论了交通状态信息颗粒的构建方法及其粒度。结果表明,基于GrC的现有交通信息处理方法可以进行整合,所提出的方法可以满足交通管理决策的需求。
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