Combining value function approximation and multiple scenario approach for the effective management of ride-hailing services

IF 2.1 Q2 OPERATIONS RESEARCH & MANAGEMENT SCIENCE
R.-Julius O. Heitmann , Ninja Soeffker , Marlin W. Ulmer , Dirk C. Mattfeld
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引用次数: 2

Abstract

The availability of various services for individual mobility is increasing, especially in urban areas. Dynamic ride-hailing services address these aspects and are gaining market share with providers such as MOIA, UberX Share, Sprinti or BerlKönig. To be able to offer competitive pricing for such a service and at the same time provide a high service quality (e.g. fast response times), effective capacity management is needed. In order to reach this goal, two challenges have to be met by the service provider. On the one hand, a proper demand control has to be installed, which optimizes the responses to transportation requests from customers. On the other hand, suitable fleet control needs to be set in place to optimize the route of the fleet so that the demand can be met. Papers in the literature do solve both but typically focus on one of these two challenges. As an example, value function approximation (VFA) can be used to learn a service offering decision while anticipating future incoming requests. A typical example of a routing-focused method is the multiple scenario approach (MSA) creating a routing which anticipates future requests using a sampling method. In this paper, we combine VFA and MSA to address the two challenges in an effective way. The resulting method is called anticipatory-routing-and-service-offering (ARS). We find that the combined method significantly outperforms the individual components, improving not only the total reward but also the accepted requests. It is found that this performance is particularly high with a heavy workload and thus resources are relatively scarce. We analyse how and under which conditions the components together or individually are particularly important.

结合价值函数近似和多场景方法对网约车服务进行有效管理
为个人流动提供的各种服务正在增加,特别是在城市地区。动态叫车服务解决了这些问题,并正在与MOIA、UberX share、Sprinti或BerlKönig等供应商争夺市场份额。为了能够为此类服务提供具有竞争力的价格,同时提供高服务质量(例如快速响应时间),需要有效的容量管理。为了达到这个目标,服务提供者必须面对两个挑战。一方面,必须安装适当的需求控制,以优化对客户运输请求的响应。另一方面,需要设置合适的车队控制,优化车队的路线,以满足需求。文献中的论文确实解决了这两个问题,但通常侧重于这两个挑战中的一个。例如,值函数近似(VFA)可用于在预测未来传入请求的同时学习服务提供决策。以路由为中心的方法的一个典型示例是多场景方法(MSA),它创建一个路由,该路由使用采样方法预测未来的请求。在本文中,我们将VFA和MSA结合起来,以有效地解决这两个挑战。由此产生的方法称为预期路由和服务提供(ARS)。我们发现组合方法明显优于单个组件,不仅提高了总奖励,而且提高了接受的请求。研究发现,在工作量大的情况下,这种性能特别高,因此资源相对稀缺。我们分析这些组成部分是如何以及在哪些条件下共同或单独特别重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
4.60
自引率
0.00%
发文量
24
审稿时长
129 days
期刊介绍: The EURO Journal on Transportation and Logistics promotes the use of mathematics in general, and operations research in particular, in the context of transportation and logistics. It is a forum for the presentation of original mathematical models, methodologies and computational results, focussing on advanced applications in transportation and logistics. The journal publishes two types of document: (i) research articles and (ii) tutorials. A research article presents original methodological contributions to the field (e.g. new mathematical models, new algorithms, new simulation techniques). A tutorial provides an introduction to an advanced topic, designed to ease the use of the relevant methodology by researchers and practitioners.
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