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Can autonomy level and anthropomorphic characteristics affect public acceptance and trust towards shared autonomous vehicles?

机译:自动驾驶水平和拟人化特征是否会影响公众对共享自动驾驶汽车的接受度和信任度?

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摘要

Shared autonomous vehicles (SAVs) are revolutionizing the future of urban mobility. This study aims to investigate the effects of artificial intelligence (i.e., autonomy level and anthropomorphic characteristics), human-related, environmental, and societal factors on public trust and acceptance. Structural equation modelling is used to analyze a valid survey sample of 451 participants. Results show that autonomy level can both directly and indirectly (via trust) increase public acceptance; Whereas, anthropomorphic characteristics cannot directly affect public acceptance, but can indirectly increase their acceptance via trust. The other human-related, environmental, and societal factors also positively contribute to public acceptance. Additionally, moderators, including age, gender, income, housing size, COVID-19 history, shared mobility experience, vehicle ownership, and driving experience are also examined. In theory, this study contextualizes the trust-in-automation three-factor model, UTAUT model, and trust theory and includes two domain-specific constructs (i.e., SAV anthropomorphism and SAV autonomy) to study public trust and acceptance towards SAVs. In practice, this study suggests the incorporation of some anthropomorphic features and relatively high autonomy level in SAVs to build public trust and acceptance.
机译:共享自动驾驶汽车 (SAV) 正在彻底改变城市交通的未来。本研究旨在调查人工智能(即自主水平和拟人化特征)、人类相关、环境和社会因素对公众信任和接受度的影响。结构方程建模用于分析 451 名参与者的有效调查样本。结果表明,自主性水平可以直接和间接地(通过信任)提高公众接受度;然而,拟人化特征不能直接影响公众的接受度,但可以通过信任间接提高公众的接受度。其他与人类相关的、环境和社会因素也对公众的接受度做出了积极贡献。此外,还检查了版主,包括年龄、性别、收入、住房面积、COVID-19 历史、共享出行体验、车辆拥有量和驾驶经验。从理论上讲,本研究将自动化信任三因素模型、UTAUT 模型和信任理论置于情境中,并包括两个特定领域的结构(即 SAV 拟人化和 SAV 自治),以研究公众对 SAV 的信任和接受度。在实践中,本研究建议在SAV中加入一些拟人化特征和相对较高的自主性水平,以建立公众的信任和接受度。

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