Route choice estimation in rail transit systems using smart card data: handling vehicle schedule and walking time uncertainties.

IF 4.3 3区 工程技术 European Transport Research Review Pub Date : 2022-01-01 Epub Date: 2022-07-19 DOI:10.1186/s12544-022-00558-x
Thomas James Tiam-Lee, Rui Henriques
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Abstract

Several cities around the world rely on urban rail transit systems composed of interconnected lines, serving massive numbers of passengers on a daily basis. Accessing the location of passengers is essential to ensure the efficient and safe operation and planning of these systems. However, passenger route choices between origin and destination pairs are variable, depending on the subjective perception of travel and waiting times, required transfers, convenience factors, and on-site vehicle arrivals. This work proposes a robust methodology to estimate passenger route choices based only on automated fare collection data, i.e. without privacy-invasive sensors and monitoring devices. Unlike previous approaches, our method does not require precise train timetable information or prior route choice models, and is robust to unforeseen operational events like malfunctions and delays. Train arrival times are inferred from passenger volume spikes at the exit gates, and the likelihood of eligible routes per passenger estimated based on the alignment between vehicle location and the passenger timings of entrance and exit. Applying this approach to automated fare collection data in Lisbon, we find that while in most cases passengers preferred the route with the least transfers, there were a significant number of cases where the shorter distance was preferred. Our findings are valuable for decision support among rail operators in various aspects such as passenger traffic bottleneck resolution, train allocation and scheduling, and placement of services.

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利用智能卡数据对轨道交通系统中的路线选择进行估算:处理车辆时刻表和步行时间的不确定性。
世界上有多个城市依靠由相互连接的线路组成的城市轨道交通系统,每天为大量乘客提供服务。要确保这些系统高效、安全地运行和规划,获取乘客的位置至关重要。然而,乘客在始发站和终点站之间的路线选择是多变的,这取决于乘客对旅行和等待时间、所需换乘、便利因素和现场车辆到达情况的主观感受。这项工作提出了一种稳健的方法,仅根据自动收费数据(即不使用侵犯隐私的传感器和监控设备)估算乘客的路线选择。与以往的方法不同,我们的方法不需要精确的列车时刻表信息或事先的路线选择模型,而且对故障和延误等不可预见的运营事件具有鲁棒性。列车到达时间可从出站口的客流量峰值推断,而每位乘客选择合格路线的可能性则可根据车辆位置与乘客进出站时间之间的一致性进行估算。将这种方法应用到里斯本的自动收费数据中,我们发现,虽然在大多数情况下,乘客更倾向于选择换乘次数最少的路线,但也有相当多的情况下,乘客更倾向于选择距离较短的路线。我们的研究结果对铁路运营商在解决客流瓶颈、列车分配和调度以及服务安排等各方面的决策支持具有重要价值。
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来源期刊
European Transport Research Review
European Transport Research Review Engineering-Mechanical Engineering
CiteScore
9.70
自引率
4.70%
发文量
49
期刊介绍: European Transport Research Review (ETRR) is a peer-reviewed open access journal publishing original high-quality scholarly research and developments in areas related to transportation science, technologies, policy and practice. Established in 2008 by the European Conference of Transport Research Institutes (ECTRI), the Journal provides researchers and practitioners around the world with an authoritative forum for the dissemination and critical discussion of new ideas and methodologies that originate in, or are of special interest to, the European transport research community. The journal is unique in its field, as it covers all modes of transport and addresses both the engineering and the social science perspective, offering a truly multidisciplinary platform for researchers, practitioners, engineers and policymakers. ETRR is aimed at a readership including researchers, practitioners in the design and operation of transportation systems, and policymakers at the international, national, regional and local levels.
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