拼车市场匹配功能的校正和验证

IF 12.5 Q1 TRANSPORTATION
Shuqing Wei , Siyuan Feng , Jintao Ke , Hai Yang
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引用次数: 0

摘要

拼车服务自出现以来,在满足人们的出行需求方面变得越来越重要。与传统的网约车服务相比,网约车服务通过网络平台将距离相对较远的司机和乘客进行匹配,大大减少了市场上的匹配摩擦。基于这一新特征以及设计运营和监管策略的需要,研究人员试图通过数学模型来描述这些创新的叫车市场,其核心是描述匹配摩擦的匹配函数。以往的研究已经开发了各种各样的网约车市场匹配函数,包括完全匹配函数、柯布-道格拉斯型匹配函数、排队模型和一些物理模型。然而,我们对这些匹配函数的适用性和性能知之甚少,也就是说,这些匹配函数在什么情况下能够很好地表征真实的市场。为了解决这一问题,本文首次尝试校准、验证和比较文献中流行的匹配函数,并确定其适用性的条件。特别地,我们建立了一个模拟器,模拟了约车市场在不同供需组合下的420种场景。利用市场匹配率、乘客平均匹配时间、乘客平均上车时间和乘客平均总等待时间等关键性能指标,对七种广泛使用的匹配功能在不同市场场景下进行了测试和比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Calibration and validation of matching functions for ride-sourcing markets

Ride-sourcing services have become increasingly important in meeting people's mobility needs since their emergence. Compared to traditional street-hailing taxi services, ride-sourcing services significantly reduce the matching frictions in the markets by matching drivers and passengers with relatively distant distances through an online platform. Motivated by this new feature as well as the need for designing operating and regulating strategies, researchers have attempted to describe these innovative ride-sourcing markets through mathematical models, the core of which is the matching functions for characterizing matching frictions. Previous studies have developed a variety of matching functions for ride-sourcing markets, including perfect matching function, Cobb-Douglas type matching function, queuing models, and some physical models. However, less is known about the applicability and performance of these matching functions, that is, under what situations each of these matching functions well characterizes the real market. To address this issue, this paper makes one of the first attempts to calibrate, validate, and compare the prevailing matching functions in the literature, and ascertain the conditions of their applicability. In particular, we establish a simulator to simulate a total of 420 scenarios of the ride-sourcing market under different combinations of supply and demand. The key performance metrics, including the matching rate in the market, passengers' average matching time, passengers' average pick-up time, and passengers' average total waiting time, are utilized to test and compare seven widely used matching functions under various market scenarios.

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CiteScore
15.20
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