在基于代理的出行需求模型中比较站点式自行车共享的实施策略

Lucas Schuhmacher, Jelle Kübler, Gabriel Wilkes, Martin Kagerbauer, Peter Vortisch
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引用次数: 0

摘要

自行车共享服务等共享交通解决方案在减少城市地区温室气体排放方面发挥着关键作用。在本文中,我们介绍了一种在基于多模式代理的出行需求模型 mobiTopp 中模拟基于站点的共享单车的方法。我们比较了代理如何选择自行车上落站点的不同实现方式。除了距离最小化的两种变化外,我们还提出了一种重力法来表示系统的可靠性。通过比较代理对步行的不同行为态度,我们共实施并测试了六种方案。所提出的方法可以轻松测试自行车和站点数量不同的场景。我们将算法应用于德国汉堡市的一个模型中,在该模型中,共有 190 万代理人的移动行为被建模。我们的模拟结果是可信的。平均距离、每个站点的利用率以及其他参数都与实际服务中的数值相吻合。虽然不同的策略会导致明显不同的访问时间,并为参数化提供了更多新的有价值的见解和选择,但由此产生的需求差异很小。总之,该模型提供了在出行需求模型中模拟共享单车的新方法,从而有助于模拟未来的一种重要交通方式。
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Comparing Implementation Strategies of Station-Based Bike Sharing in Agent-Based Travel Demand Models

Shared mobility solutions such as bike sharing services play a key role to reduce greenhouse gas emissions in urban areas. In this paper, we present an approach to model station-based bike sharing in the multi-modal agent-based travel demand model mobiTopp. We compare different implementations of how agents choose their bike pick-up and drop-off stations. In addition to two variations of distance minimization, we also present a gravity approach to represent the reliability of a system. By also comparing different behavioral attitudes of the agents towards walking, a total of six scenarios were implemented and tested. The presented approach allows to easily test scenarios with a varying number of bikes and stations. We apply our algorithm to a model for the city of Hamburg, Germany, where the mobility behavior of a total of 1.9 million agents is modeled. Our simulations show plausible results. The average distances, utilization shares of each station, and other parameters match with values from the actual service. While the different strategies result in significantly different access times, and provide further new valuable insights and options for parameterization, differences in resulting demand are small. Overall, this model provides new methods to simulate bike sharing in travel demand models, thus helps to simulate an important mode of transport of the future.

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