共享自主自行车性能的仿真研究

IF 12.5 Q1 TRANSPORTATION
Naroa Coretti Sanchez , Iñigo Martinez , Luis Alonso Pastor , Kent Larson
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引用次数: 8

摘要

随着社会面临人口增长和气候变化等全球性挑战,重新思考城市比以往任何时候都更加迫切。城市的设计不能从其交通系统的设计中抽象出来。因此,必须找到有效的解决方案,以高效和生态的方式在整个城市运输人员和货物。自动自行车共享系统将结合车辆共享、自主性和微机动性的最相关好处,提高自行车共享系统的效率和便利性,并激励更多的人骑自行车,以环保的方式享受他们的城市。由于将自动驾驶技术引入自行车共享系统的新颖性及其固有的复杂性,有必要量化自动驾驶对车队性能和用户体验的潜在影响。本文介绍了基于智能体的仿真结果,该仿真提供了对现实场景中自动自行车共享系统的车队行为的深入理解,包括基于需求预测的再平衡系统。此外,本文还描述了不同参数对系统效率和服务质量的影响。最后,它量化了自动系统比当前基于站点和无桩的自行车共享计划的表现要好到什么程度。获得的结果表明,车队规模比基于站点的系统小3.5倍,比无码头系统小8倍,即使不进行再平衡,自治系统也可以提高整体性能和用户体验。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
On the performance of shared autonomous bicycles: A simulation study

As society faces global challenges such as population growth and climate change, rethinking cities is now more imperative than ever. The design of cities can not be abstracted from the design of their mobility systems. Therefore, efficient solutions must be found to transport people and goods throughout the city efficiently and ecologically. An autonomous bicycle-sharing system would combine the most relevant benefits of vehicle-sharing, autonomy, and micro-mobility, increasing the efficiency and convenience of bicycle-sharing systems and incentivizing more people to bike and enjoy their cities in an environmentally friendly way. Due to the novelty of introducing autonomous driving technology into bicycle-sharing systems and their inherent complexity, there is a need to quantify the potential impact of autonomy on fleet performance and user experience. This paper presents the results of an agent-based simulation that provides an in-depth understanding of the fleet behavior of autonomous bicycle-sharing systems in realistic scenarios, including a rebalancing system based on demand prediction. In addition, this work describes the impact of different parameters on system efficiency and service quality. Finally, it quantifies the extent to which an autonomous system would outperform current station-based and dockless bicycle-sharing schemes. The obtained results show that with a fleet size three and a half times smaller than a station-based system and eight times smaller than a dockless system, an autonomous system can improve overall performance and user experience even with no rebalancing.

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CiteScore
15.20
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