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A Study of Headway Maintenance for Bus Routes: Causes and Effects of “Bus Bunching” in Extensive and Congested Service Areas

机译:公交线路车头维修研究:广泛拥挤服务区“公交联运”的原因及影响

摘要

A healthy and efficient public transit system is indispensable to reduce congestion, emissions, energy consumption, and car dependency in urban areas. The objective of this research is to 1) develop methods to evaluate and visualize bus service reliability for transit agencies in various temporal and spatial aggregation levels; 2) identify the recurrent unreliability trends of bus routes (focusing on high-frequency service periods) and understand their characteristics, causes and effects; and 3) model service times using linear regression models.This research utilized six months of archived automatic vehicle location (AVL) and automatic passenger count (APC) data from a low-performance route (Route 15) of TriMet, the public transit provider in the Portland metropolitan area. Route 15 has experienced difficulties in terms of schedule adherence and headway regularity. This research developed methods to summarize causes of bus bunching. We first determined the frequency of each cause (expressed as percentages) meeting pre-determined thresholds. Next, we performed a sensitivity analysis to demonstrate how cause percentage results change using varying difficulty levels of bus bunching thresholds. Finally, we investigated how cause percentage results vary spatially along different route segments. This research also developed novel ways to summarize and visualize vast amounts of bus route operations data in an insightful and intuitive manner: 1) a route/stop level visualization performance measure framework using color contour diagrams and 2) a dynamic interactive bus monitoring visualization framework based on a Google Maps platform. Visualizations proposed in this study can aid transit agency managers and operators to identify operational problems and better understand how such problems propagate spatially and temporally across routes. Finally, regression models were estimated to understand the key factors impacting dwell and travel times.
机译:一个健康,高效的公共交通系统对于减少城市地区的交通拥堵,排放,能耗和汽车依赖性必不可少。这项研究的目的是:1)开发评估和可视化公交机构在各种时空聚集水平上公交服务可靠性的方法; 2)确定公交路线的反复不可靠趋势(关注高频服务时段),并了解其特征,原因和影响; 3)使用线性回归模型对服务时间进行建模。这项研究利用了六个月的TriMet公交低速路线(第15号路线)的自动车辆位置(AVL)和自动乘客计数(APC)数据存档,波特兰市区。 15号路线在日程安排遵守和车距规律方面遇到困难。这项研究开发了总结总线聚束原因的方法。我们首先确定每个原因达到预定阈值的频率(以百分比表示)。接下来,我们进行了敏感性分析,以说明在使用不同的公交车集中阈值难度级别时,原因百分比结果如何变化。最后,我们调查了原因百分比结果如何沿不同的路线段在空间上变化。这项研究还开发了新颖的方法,以一种有见地和直观的方式来汇总和可视化大量公交路线操作数据:1)使用颜色轮廓图的路线/停车位可视化性能度量框架,以及2)基于动态交互的公交车监控可视化框架在Google Maps平台上。本研究中提出的可视化可以帮助运输代理管理人员和操作人员识别操作问题,并更好地理解这些问题如何在空间和时间上跨路线传播。最后,估计了回归模型以了解影响停留时间和旅行时间的关键因素。

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