Private or On-Demand Autonomous Vehicles? Modeling Public Interest Using a Multivariate Model

Sailesh Acharya
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Abstract

With the likely future of autonomous vehicles (AVs) as private, ride-hailing, and pooled vehicles, it is important to consider all forms of AVs when estimating the impacts of automation on travel behavior. To aid this, this study jointly models the public interest in three forms of AVs (owning, ride-hailing, and using pooled services) and compares the interests in owning versus ride-hailing AVs using a combination of structural equation modeling and multivariate ordered probit modeling frameworks. Using the 2019 California Vehicle Survey data, we estimate the impacts of several exogenous and latent variables on all forms of AV adoption. We find that the individual, household, travel-related, and built-environment factors are related to different forms of AV adoption directly and indirectly through attitudes toward human and automated driving. We also report that human and automated driving sentiments have the highest impact on interest in owning an AV compared to interest in ride-hailing and using pooled AVs. We discuss several policy implications by calculating the pseudo-elasticity effects of exogenous variables and the sensitivities of the impacts on latent variables on different forms of AV adoption. For example, public interest in owning private AVs can be increased by more than 7% by making them familiar with autonomous technology.
私人自动驾驶汽车还是按需自动驾驶汽车?使用多变量模型模拟公众利益
自动驾驶汽车(AVs)的未来可能是私人汽车、打车汽车和拼车汽车,因此在估算自动化对出行行为的影响时,必须考虑所有形式的自动驾驶汽车。为此,本研究采用结构方程建模和多变量有序概率建模相结合的框架,对公众对三种形式的自动驾驶汽车(拥有、打车和使用集合服务)的兴趣进行联合建模,并对拥有和打车自动驾驶汽车的兴趣进行比较。利用 2019 年加州车辆调查数据,我们估算了几个外生变量和潜在变量对所有形式的电动汽车采用的影响。我们发现,个人、家庭、旅行相关因素和建筑环境因素直接或间接地通过对人类和自动驾驶的态度与不同形式的自动驾驶汽车采用相关。我们还报告说,与对打车服务和使用集合式自动驾驶汽车的兴趣相比,对人类和自动驾驶的态度对拥有自动驾驶汽车的兴趣影响最大。我们通过计算外生变量的伪弹性效应以及潜在变量对不同形式的自动驾驶汽车采用的影响的敏感性,讨论了若干政策含义。例如,通过让公众熟悉自动驾驶技术,可以将他们对拥有私人自动驾驶汽车的兴趣提高 7% 以上。
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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CiteScore
7.10
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