挖掘运输行为的时间模式,以预测未来的运输使用

S. Föll, Gerd Kortuem, Reza Rawassizadeh, S. Phithakkitnukoon, Marco Veloso, C. Bento
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引用次数: 30

摘要

以个人运输用户为中心的信息系统。特别是在人口密集的城市,由于复杂的交通网络经常发生变化、维护和建设工程,很难对其进行监督,因此旅行者希望主动收到与他们未来行为相关的交通中断和交通事故的通知。在本文中,我们展示了如何挖掘城市公交乘客交通路线的特征模式,以设计能够理解个人用户即将到来的出行需求的新型出行信息系统。我们利用从自动收费系统(AFC)收集的旅行历史来提取个人交通使用的特征,并研究其预测能力,以预测人们在未来一天是否使用公共交通服务。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mining temporal patterns of transport behaviour for predicting future transport usage
information systems which are centred on the individual transport user. Especially, in dense urban cities where it is hard to oversee complex transport networks that are subject to frequent changes, maintenance and construction works, travellers want to be proactively notified about disruptions and traffic incidents relevant to their future behaviour. In this paper, we show how to mine characteristic patterns of the transport routines of urban bus riders for the design of novel travel information system that have the ability to understand forthcoming travel needs of individual users. We leverage on travel histories collected from automated fare collection system (AFC) to extract features of personal transport usage and study their predictive power to forecast whether people access public transport services on a future day or not.
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