论文标题

通过预订和按需客户模拟乘车服务

Simulating Ride-Pooling Services with Pre-Booking and On-Demand Customers

论文作者

Engelhardt, Roman, Dandl, Florian, Bogenberger, Klaus

论文摘要

如果可以更换私人车辆旅行,则乘车服务可以降低较高车辆利用所需的停车位,并通过增加车辆占用率提高交通效率。然而,只有在通过某个市场渗透来找到足够的共享游乐设施以进行集合时,才能实现重大利益。此外,由于其高度动态和随机的性质,按需乘车服务不能总是保证提供请求。允许客户提前预订旅行可以为这两个方面提供好处。其他知识可以帮助操作员更好地计划车辆时间表,以提高服务效率,同时可以尽早向客户传达可接受的旅行或拒绝。这项研究提出了一个仿真框架,其中乘车提供者在混合操作中提供服务:客户可以使用按需或预先预订的旅行。提出了基于图的批处理优化公式,以为预订客户创建离线计划。使用两个滚动范围,此离线解决方案可以同时转发到对按需和预订客户的在线优化。该框架在纽约曼哈顿的案例研究中进行了测试。在解决方案质量和运行时,基于图的批处理优化优于基本插入方法。由于额外的知识,乘车运营商可以通过为更多的客户提供服务,同时可以提高汇总效率,从而显着提高解决方案质量。此外,客户的等待和绕行时间越短,随着客户提前预订旅行。

If private vehicle trips can be replaced, ride-pooling services can decrease parking space needed by higher vehicle utilization and increase traffic efficiency by increasing vehicle occupancy. Nevertheless, substantial benefits can only be achieved if a certain market penetration is passed to find enough shareable rides for pooling to take place. Additionally, because of their highly dynamic and stochastic nature on-demand ride-pooling services cannot always guarantee that a request is served. Allowing customers to pre-book their trip in advance could provide benefits for both aspects. Additional knowledge helps an operator to better plan vehicle schedules to improve service efficiency while an accepted trip or a rejection can be communicated early on to the customer. This study presents a simulation framework where a ride-pooling provider offers a service in mixed operation: Customers can either use the service on-demand or pre-book trips. A graph-based batch optimization formulation is proposed to create offline schedules for pre-booking customers. Using two rolling horizons, this offline solution is forwarded to an online optimization for on-demand and pre-booking customers simultaneously. The framework is tested in a case study for Manhattan, NYC. That the graph-based batch optimization is superior to a basic insertion method in terms of solution quality and run-time. Due to additional knowledge, the ride-pooling operator can improve the solution quality significantly by serving more customers while pooling efficiency can be increased. Additionally, customers have shorter waiting and detour times the more customers book a trip in advance.

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