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A scalable non-myopic dynamic dial-a-ride and pricing problem for competitive on-demand mobility systems

机译:竞争性按需移动系统的可扩展的非近视动态拨号和定价问题

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摘要

We propose a competitive on-demand mobility model using a multi-server queue system under infinite-horizon look-ahead. The proposed approach includes a novel dynamic optimization algorithm which employs a Markov decision process (MDP) and provides opportunities to revolutionize conventional transit services that are plagued by high cost, low ridership, and general inefficiency, particularly in disadvantaged communities and low-income areas. We use this model to study the implications it has for such services and investigate whether it has a distinct cost advantage and operational improvement. We develop a dynamic pricing scheme that utilizes a balking rule that incorporates socially efficient level and the revenue-maximizing price, and an equilibrium joining threshold obtained by imposing a toll on the customers who join the system. Results of numerical simulations based on actual New York City taxicab data indicate that a competitive on-demand mobility system supported by the proposed model increases the social welfare by up to 37% on average compared to the single-server queuing system. The study offers a novel design scheme and supporting tools for more effective budget/resource allocation, planning, and operation management of flexible transit systems.
机译:我们提出了一种在无限水平超前的情况下使用多服务器队列系统的竞争按需移动模型。拟议的方法包括一种新颖的动态优化算法,该算法采用了马尔可夫决策过程(MDP),并提供了机会来变革传统的过境服务,而传统的过境服务受到高成本,低乘车率和普遍低效率的困扰,特别是在处境不利的社区和低收入地区。我们使用此模型来研究其对此类服务的影响,并调查其是否具有明显的成本优势和运营改进。我们开发了一种动态定价方案,该方案利用了将社会有效水平和收益最大化价格结合在一起的禁止规则,以及通过向加入该系统的客户收取通行费而获得的均衡加入阈值。基于纽约市出租车实际数据的数值模拟结果表明,与单服务器排队系统相比,该模型支持的竞争性按需出行系统平均可将社会福利提高多达37%。该研究为灵活的公交系统的更有效的预算/资源分配,计划和运营管理提供了新颖的设计方案和支持工具。

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