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An improved distance metric for the interpolation of link-based traffic data using kriging: a case study of a large-scale urban road network

机译:使用克里金插值的基于链接的交通数据插值的改进距离度量:以大型城市道路网为例

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摘要

The interpolation of link-based traffic data is an important topic for transportation researchers and engineers. In recent years the kriging method has been used in traffic data interpolation from the viewpoint of spatial analysis. This method has shown promising results, especially for a large-scale road network. However, existing studies using the Euclidean distance metric, which is widely used in traditional kriging, fail to accurately describe the spatial distance in a road network. In this article we introduce road network distance to describe spatial distance between road links, and we propose an improved distance metric called approximate road network distance (ARND), based on the isometric embedding theory, for solving the problem of the invalid spatial covari-ance function in kriging caused by the non-Euclidean distance metric. An improved Isomap algorithm is also proposed for obtaining the ARND metric. This study is tested on a large-scale urban road network with sparse road-link travel speeds derived from approximately 1200 'floating cars' (GPS-enabled taxis). Comparison was conducted on both the Euclidean distance metric and the ARND metric. The validation results show that the use of the ARND metric can obtain better interpolation accuracy in different time periods and urban regions with different road network structures. Therefore, we conclude that the improved distance metric has the ability for improving kriging interpolation accuracy for link-based traffic data within real situations, providing more reliable basic traffic data for various traffic applications.
机译:基于链接的交通数据的插值是交通研究人员和工程师的重要课题。近年来,从空间分析的观点出发,克里金法已被用于交通数据插值中。这种方法已显示出令人鼓舞的结果,特别是对于大规模的道路网络。然而,现有的使用欧几里德距离度量标准的研究在传统克里金法中被广泛使用,但未能准确描述道路网络中的空间距离。在本文中,我们介绍了路网距离以描述路段之间的空间距离,并基于等距嵌入理论,提出了一种改进的距离度量,称为“近似路网距离”(ARND),用于解决无效的空间协方差问题由非欧几里得距离度量引起的克里金函数。还提出了一种改进的Isomap算法来获取ARND度量。这项研究在大规模城市道路网络上进行了测试,该道路网络的稀疏道路行驶速度来自大约1200辆“浮动汽车”(支持GPS的出租车)。对欧氏距离度量和ARND度量进行了比较。验证结果表明,使用ARND度量可以在不同时间段和具有不同路网结构的城市地区获得更好的插值精度。因此,我们得出的结论是,改进的距离度量可以提高真实情况下基于链接的交通数据的克里格插值插值精度,从而为各种交通应用提供更可靠的基本交通数据。

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  • 作者单位

    State Key Laboratory of Information Engineering in Surveying, Mapping and Remote Sensing,Wuhan University, Wuhan, PR China,Engineering Research Center for Spatio-Temporal Data Smart Acquisition and Application, Ministry of Education of China, Wuhan, PR China,School of Remote Sensing and Information Engineering, Wuhan University, Wuhan, PR China;

    State Key Laboratory of Information Engineering in Surveying, Mapping and Remote Sensing,Wuhan University, Wuhan, PR China,Engineering Research Center for Spatio-Temporal Data Smart Acquisition and Application, Ministry of Education of China, Wuhan, PR China;

    State Key Laboratory of Information Engineering in Surveying, Mapping and Remote Sensing,Wuhan University, Wuhan, PR China,Engineering Research Center for Spatio-Temporal Data Smart Acquisition and Application, Ministry of Education of China, Wuhan, PR China;

    Centre of Urban Studies and Urban Planning, The University of Hong Kong, Hong Kong SAR, PR China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    geographic information systems for transportation (GIS-T); traffic data interpolation; kriging; distance metric; isometric embedding;

    机译:运输地理信息系统(GIS-T);交通数据插值;克里格距离度量;等距嵌入;

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