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Deriving performance measures for transportation planning using ITS archived data

机译:使用ITS归档数据得出运输计划的绩效指标

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摘要

Various modern sensor technologies deployed under the auspices of intelligent transportation systems (ITS) for data collection and archiving have helped in accumulating a wealth of transportation data in the form of data archives. Archiving of transportation data obtained from intelligent sources is practiced in most parts of the US under the auspices of the states' departments of transportation. However, recently there is a shift in the focus of archived data management systems (ADMS) from data collection and archiving to data analysis and distribution to stakeholders. This article discusses the use of archived ITS data for the development of performance measures for transportation planning and air quality support service. This service is packaged within a larger ADMS effort called Traffic Management Centers (TMC) Applications of Archived Data, which is also known by its working title 'ADMS Virginia'. Nine sub-services for computing various performance measures at different spatial and temporal levels of aggregation are available within the transportation planning and air quality service. The nine performance measures provided are traffic speed, volume, density, vehicle miles traveled (VMT), percent VMT by time of day, travel time, volume-to-capacity ratio, peak hour factor, and average daily traffic (ADT). The service integrates a subset of a regional transportation planning network with the traffic flow data in the archived databases. The performance measures developed in this study have a broad spectrum of uses ranging from long- and short-range transportation planning, transportation system monitoring, regional air quality monitoring and air quality conformity, development of forecasting and simulation models, and establishment of growth impact policies. The concepts of operations of this system are discussed along with functional requirements, data model, and algorithms for deriving the performance measures. The methodology and procedures discussed in this article are portable and can easily be adopted by other ADMS efforts.
机译:在智能运输系统(ITS)的主持下部署的各种现代传感器技术,用于数据收集和归档,以数据档案的形式帮助积累了大量的运输数据。在美国各州的运输部门的主持下,美国大部分地区都对从智能资源获取的运输数据进行归档。但是,最近,归档数据管理系统(ADMS)的重点已经从数据收集和归档到数据分析和分发给利益相关者。本文讨论了使用已归档的ITS数据来制定运输计划和空气质量支持服务的性能指标。这项服务打包在称为“流量管理中心(TMC)存档数据的应用”的更大的ADMS中,该工作也被称为“ ADMS Virginia”。在运输计划和空气质量服务中,有九个子服务可用于在聚合的不同时空级别上计算各种性能指标。提供的九项性能指标是交通速度,体积,密度,行驶的车辆英里数(VMT),一天中不同时间的VMT百分比,行驶时间,体积/容量比,高峰时段因子和平均每日交通量(ADT)。该服务将区域交通规划网络的子集与已归档数据库中的交通流数据集成在一起。这项研究制定的绩效指标具有广泛的用途,包括远程和短期运输规划,运输系统监视,区域空气质量监视和空气质量合格性,预测和模拟模型的开发以及增长影响政策的建立。讨论了该系统的操作概念,以及功能需求,数据模型和用于得出性能指标的算法。本文讨论的方法和过程是可移植的,并且可以被其他ADMS轻松采用。

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