T2CBS: Mining taxi trajectories for customized bus systems

Yan Lyu, Chi-Yin Chow, V. Lee, Yanhua Li, Jia Zeng
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引用次数: 26

Abstract

A customized bus (CB) system is a new emerging public transportation that provides flexible demand-oriented transit services for city commuters. Existing CB systems encounter two challenges of 1) collecting travel demands and discovering travel patterns effectively and efficiently and 2) planning profitable bus lines based on travel patterns. In this paper, we propose a bus line planning framework, called T2CBS, by taking full advantage of taxi trajectory data. In T2CBS, similar travel demands are discovered from passenger trajectories with a clustering algorithm, and CB stops are deployed at pick-up and drop-off points of trajectory clusters with integer linear programming. To plan profitable CB lines, we propose a profit estimation model, by considering the number of taxi passengers who can be attracted to CB buses. A routing algorithm (CBRouting) and a timetabling algorithm (CBTimetabling) are proposed to generate a CB line that can achieve the maximum profit for each trajectory cluster. We conduct experiments on one-month taxi trajectory data in Nanjing, China. Experimental results demonstrate that our T2CBS can generate CB lines with higher profit compared with baseline methods, and the moderate increase in travel time along the CB lines is significantly dominated by the savings in bus fare.
T2CBS:为定制公交系统挖掘出租车轨迹
定制公交(CB)系统是一种新兴的公共交通工具,为城市通勤者提供灵活的需求导向的交通服务。现有的公交系统面临两个挑战:1)收集出行需求并有效地发现出行模式;2)根据出行模式规划有利可图的公交线路。在本文中,我们提出了一个公交线路规划框架,称为T2CBS,充分利用出租车轨迹数据。在T2CBS中,使用聚类算法从乘客轨迹中发现相似的出行需求,并使用整数线性规划将CB站点部署在轨迹集群的上下车点上。为了规划可盈利的CB线路,我们提出了一个盈利估算模型,该模型考虑了可被CB巴士吸引的出租车乘客数量。提出了一种路由算法(CBRouting)和时序算法(CBTimetabling)来生成每个轨迹簇利润最大的CB线。我们在中国南京对一个月的出租车轨迹数据进行了实验。实验结果表明,与基线方法相比,T2CBS可以产生更高利润的CB线路,并且沿CB线路的旅行时间的适度增加显着被公交票价的节省所主导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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