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A Study on Travel Time Estimation of Diverging Traffic Stream on Highways Based on Timestamp Data

机译:基于时间戳数据的高速公路发散流量流的旅行时间估计研究

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Travel time is valuable information for both drivers and traffic managers. While properly estimating the travel time of a single road section, an issue arises when multiple traffic streams exist. In highways, this usually occurs at the upstream of diverge bottleneck. The aim of this paper is to provide a new framework for travel time estimation of a diverging traffic stream using timestamp data only. While providing the framework, the main focus of this paper is on performing a few analyses on the stage of travel time data classification in the proposed framework. Three sequential steps with a few statistical approaches are provided in this stage: detection of data divergence, classification of divergent data, and outlier filtering. First, a divergence detection index (DDI) of data has been developed, and the analysis results show that this new index is useful in finding the threshold of determining data divergence. Second, three different methods are tested in terms of properly classifying the divergent data. It is found that our modified method based on the approach used by Korea Expressway Corporation shows superior performance. Third, a polynomial regression-based method is used for outlier filtering, and this shows reasonable performance even at a relatively low market penetration rate (MPR) of probe vehicles. Then, the overall performance of the travel time estimation framework is tested, and this test demonstrates that the proposed framework can show improved performance in distinctively estimating the travel times of two different traffic streams in the same road section.
机译:旅行时间是司机和交通管理人员的宝贵信息。在正确估计单个路段的旅行时间的同时,存在多个流量流时出现问题。在高速公路中,这通常发生在不同的偏向瓶颈的上游。本文的目的是提供仅使用时间戳数据的旅行时间估计的新框架。在提供框架的同时,本文的主要焦点是在提出的框架中对旅行时间数据分类阶段进行少数分析。在此阶段提供了具有少数统计方法的三个连续步骤:检测数据发散,分类数据分类,以及异常滤波。首先,已经开发了数据的分歧检测索引(DDI),分析结果表明,该新索引在找到确定数据发散的阈值方面是有用的。其次,根据正确分类发散数据来测试三种不同的方法。结果发现,基于韩国高速公路公司使用的方法的修改方法显示出卓越的性能。第三,使用基于多项式回归的方法用于异常滤波,即使在探针车辆的相对低的市场渗透率(MPR)中,这也显示出合理的性能。然后,测试旅行时间估计框架的整体性能,该测试表明,所提出的框架可以在不同地估计同一条路段中的两个不同交通流量的旅行时间来表现出改进的性能。

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