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Improving ridesplitting services using optimization procedures on a shareability network: A case study of Chengdu

机译:使用共享网络上的优化程序改善拼车服务:以成都为例

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摘要

Ridesourcing services play a crucial role in metropolitan transportation systems and aggravate urban traffic congestion and air pollution. Ridesplitting is one possible way to reduce these adverse effects and improve the transport efficiency, especially during rush hours. This paper aims to explore the potential of ridesplitting during peak hours using empirical ridesourcing data provided by DiDi Chuxing, which contains complete datasets of ridesourcing orders in the city of Chengdu, China. A ridesplitting trip identification algorithm based on a shareability network is developed to quantify the potential of ridesplitting. Then, we evaluate the gap between the potential and actual scales of ridesplitting. The results show that the percentage of potential cost savings can reach 18.47% with an average delay of 4.76 min, whereas the actual percentage is 1.22% with an average delay of 9.86 min. The percentage of shared trips can be increased from 7.85% to 90.69%, and the percentage of time savings can reach 25.75% from 2.38%. This is the first investigation of the gap between the actual scale and the potential of ridesplitting on a city scale. The proposed ridesplitting algorithm can not only bring benefits on a city level but also take passenger delays into consideration. The quantitative benefits could encourage transportation management agencies and transportation network companies to develop sensible policies to improve the existing ridesplitting services.
机译:拼车服务在城市交通系统中起着至关重要的作用,加剧了城市交通拥堵和空气污染。减分是减少这些不利影响并提高运输效率的一种可能方法,特别是在高峰时段。本文旨在利用DiDi Chuxing提供的经验性购车数据来探索高峰时段拼车的潜力,该数据包含中国成都市的购车订单的完整数据集。开发了基于共享网络的拼车旅行识别算法,以量化拼车的潜力。然后,我们评估潜在的和实际的拼车规模之间的差距。结果表明,潜在成本节省的百分比可以达到18.47%,平均延迟为4.76分钟,而实际百分比为1.22%,平均延迟为9.86分钟。共享旅行的百分比可以从7.85%增加到90.69%,节省时间的百分比可以从2.38%达到25.75%。这是首次调查实际规模与城市规模中潜在的搭便车行为之间的差距。所提出的拼车算法不仅可以在城市层面上带来收益,还可以考虑乘客的延误。定量收益可以鼓励运输管理机构和运输网络公司制定明智的政策,以改善现有的拼车服务。

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