Reliability-Based Mixed Traffic Equilibrium Problem Under Endogenous Market Penetration of Connected Autonomous Vehicles and Uncertainty in Supply

Qi Zhong, Lixin Miao
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Abstract

In this paper, we consider a novel reliability-based network equilibrium problem for mixed traffic flows of human-driven vehicles (HVs) and connected autonomous vehicles (CAVs) with endogenous CAV market penetration and stochastic link capacity degradations. Travelers’ perception errors on travel time and their risk-aversive behaviors on mode choice and path choice are incorporated in the model with a hierarchical choice structure. Due to the differences between HVs and CAVs, the perception errors and the safety margin reserved by risk-averse travelers are assumed to be related to the vehicle type. The path travel time distribution is derived by using the moment-matching method based on the assumption that link capacity follows lognormal distribution and link travel times are correlated. Then, the underlying problem is formulated as an equivalent variational inequality problem. A path-based algorithm embedded with the Monte Carlo simulation-based method is proposed to solve the model. Numerical experiments are conducted to illustrate the features of the model and the computational performance of the solution algorithm.

Abstract Image

互联自主车辆内生市场渗透和供应不确定性下基于可靠性的混合交通均衡问题
在本文中,我们考虑了一个新颖的基于可靠性的网络均衡问题,该问题涉及人类驾驶车辆(HVs)和互联自动驾驶车辆(CAVs)的混合交通流,具有内生的 CAV 市场渗透和随机链路容量退化。该模型采用分层选择结构,纳入了出行者对出行时间的感知误差及其对模式选择和路径选择的风险规避行为。由于 HV 和 CAV 之间存在差异,因此假定风险规避者的感知误差和预留的安全系数与车辆类型相关。路径旅行时间分布是在假设链路容量服从对数正态分布和链路旅行时间相关的基础上,通过矩匹配法得出的。然后,将基本问题表述为等价变式不等式问题。为求解该模型,提出了一种嵌入蒙特卡罗模拟方法的基于路径的算法。通过数值实验说明了模型的特点和求解算法的计算性能。
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