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首页> 外文期刊>Transportation Research. Part A >A stochastic modeling approach to dynamic prediction of section-wide inter-lane and intra-lane traffic variables using point detector data
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A stochastic modeling approach to dynamic prediction of section-wide inter-lane and intra-lane traffic variables using point detector data

机译:使用点检测器数据动态预测路段范围内和车道内交通变量的随机建模方法

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摘要

Real-time section-wide lane traffic variables such as density and lane-changing are vital to traffic control and management in urban areas. They can be used as decision variables to determine traffic control and management strategies in real time as well as characterize road traffic congestion for further use in advanced traveler information systems. Therefore, developing techniques which provide real-time infor- mation regarding section-wide inter-lane and intra-lane traffic variables is an increasingly important task in the area of advanced transportation management and information systems. This paper presents a sto- chastic system modeling approach to extracting real-time information of section-wide inter-lane as well as intra-lane traffic (e.g. lane-changing fractions, lane densities, etc.) utilizing lane traffic counts detected from point detectors. The proposed methodology consists of three principle elements: (1) specification of system states, (2) system modeling, and (3) recursive estimation. Preliminary test results indicated that the pro- posed methodology is promising for estimating real-time section-wide inter-lane as well as intra-lane traffic variables based merely on point detector data. The inter-lane and intra-lane traffic information generated by the proposed method can be further used in developing related technologies such as road traffic con- gestion detection, automatic incident detection, prediction of driver route choices, variable message signs and in-car navigation devices.
机译:区域范围内的实时全车道交通变量,例如密度和换道,对于城市地区的交通控制和管理至关重要。它们可以用作决策变量,以实时确定交通控制和管理策略,以及表征道路交通拥堵情况,以进一步在高级旅行者信息系统中使用。因此,在先进的运输管理和信息系统领域,开发提供有关全路段车道间和车道内交通变量的实时信息的技术已成为越来越重要的任务。本文提出了一种随机系统建模方法,该方法利用从点检测到的车道交通量来提取路段范围内和车道内交通的实时信息(例如,车道变换分数,车道密度等)。探测器。所提出的方法包括三个主要元素:(1)系统状态的规范,(2)系统建模和(3)递归估计。初步测试结果表明,所提出的方法有望仅基于点检测器数据来估计实时的全路段车道间以及车道内交通变量。通过该方法产生的车道间和车道内交通信息可进一步用于开发相关技术,例如道路交通拥堵检测,自动事件检测,驾驶员路线选择预测,可变消息标志和车载导航设备。

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