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Evaluation of the Accuracy and Automation of Travel Time and Delay Data Collection Methods

机译:行程时间和延误数据收集方法的准确性和自动化评估

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Travel time and delay are among the most important measures for gauging a transportation system’s performance. To address the growing problem of congestion in the US, transportation planning legislation mandated the monitoring and analysis of system performance and produced a renewed interest in travel time and delay studies. The use of traditional sensors installed on major roads (e.g. inductive loops) for collecting data is necessary but not sufficient because of their limited coverage and expensive costs for setting up and maintaining the required infrastructure. The GPS-based techniques employed by the University of Delaware have evolved into an automated system, which provides more realistic experience of a traffic flow throughout the road links. However, human error and the weaknesses of using GPS devices in urban settings still have the potential to create inaccuracies. By simultaneously collecting data using three different techniques, the accuracy of the GPS positioning data and the resulting travel time and delay values could be objectively compared for automation and statistically compared for accuracy. It was found that the new technique provided the greatest automation requiring minimal attention of the data collectors and automatically processing the data sets. The data samples were statistically analyzed by using a combination of parametric and nonparametric statistical tests. This analysis greatly favored the GeoStats GPS method over the rest methods.
机译:行驶时间和延误是衡量运输系统性能的最重要指标。为了解决美国日益严重的交通拥堵问题,交通运输计划立法要求对系统性能进行监视和分析,并对旅行时间和延误研究产生了新的兴趣。必须使用安装在主要道路上的传统传感器(例如,感应环路)来收集数据,但由于其覆盖范围有限以及建立和维护所需基础设施的昂贵成本,因此这是不够的。特拉华大学采用的基于GPS的技术已经发展成为一种自动化系统,该系统可以提供更真实的道路通行交通体验。但是,人为错误和在城市环境中使用GPS设备的缺点仍然可能造成不准确。通过同时使用三种不同的技术收集数据,可以客观地比较GPS定位数据的准确性以及由此产生的行进时间和延迟值,以实现自动化,并进行统计性的准确性比较。发现新技术提供了最大程度的自动化,几乎不需要数据收集者的注意,并且可以自动处理数据集。通过结合使用参数和非参数统计检验对数据样本进行统计分析。与其他方法相比,此分析极大地支持了GeoStats GPS方法。

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