采用具有独特服务功能的新兴出行方式的二元选择模型

IF 12.5 Q1 TRANSPORTATION
Yu Gu , Anthony Chen , Sunghoon Jang , Songyot Kitthamkesorn
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引用次数: 0

摘要

在新兴技术时代,交通系统正在引入自动驾驶汽车等创新交通服务,这些服务具有传统出行方式所不具备的独特服务功能。为了便于理解创新交通方式的行为影响和采用情况,我们针对传统交通方式和新兴交通方式之间的二元选择,开发了一种新颖的带有奇异选择(BW-O)的二元 weibit 模型。BW-O 模型在保留闭式选择概率的同时,明确考虑了新兴出行方式前所未有(或独一无二)的服务特点。本研究通过经验说明了 BW-O 模型在模式选择中的应用。与现有的二元选择模型相比,BW-O 模型的理想特性将在理论和实证方面得到讨论。在新兴出行方式的二元模式选择问题中,新兴出行方式的独特服务特征会导致 "怪人 "效应和 "超级明星 "效应,这两种效应在出行行为和模式采用中起着至关重要的作用。BW-O 模型通过考虑新兴模式较高的感知方差和不同模式间不对称的选择概率,从本质上捕捉到了这两种效应。因此,正如实证结果所示,BW-O 模型在模型拟合度和预测能力方面都优于基本的二进制 weibit 模型。所建立的 BW-O 模型不仅适用于交通系统中的模式选择问题,而且还为更一般的类别不平衡二元选择情境(即替代方案具有额外吸引力和非对称选择概率)打开了一扇大门。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A binary choice model for adoption of an emerging travel mode with unique service features

In the era of emerging technologies, the transportation system is witnessing the introduction of innovative mobility services, such as autonomous vehicles, which possess unique service features that cannot be seen from conventional travel modes. To facilitate the understanding of the behavioral impacts and the adoption of innovative mobilities, a novel binary weibit model with an oddball alternative (BW-O) is developed for the binary choice between conventional and emerging mobilities. The BW-O model explicitly considers the unprecedented (or unique) service features of emerging travel modes while retaining the closed-form choice probability. This study empirically illustrates the application of the BW-O model in the mode choice context. The desirable properties of the BW-O model compared to the existing binary choice models are discussed both theoretically and empirically. In the binary mode choice problem with an emerging travel mode, the unique service features of the emerging mode can lead to the “oddball” effect and “superstar” effect, which play a critical role in the travel behavior and mode adoption. The BW-O model inherently captures both effects by considering a higher perception variance for the emerging mode and asymmetric choice probabilities between different modes. Thus, as revealed by the empirical results, the BW-O model outperforms the basic binary weibit model in terms of both model fit and predictive power. The developed BW-O model is not only applicable to the mode choice problem in transportation systems, but also opens a door for more general class-imbalanced binary choice contexts where an alternative has additional attractiveness and asymmetric choice probability.

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CiteScore
15.20
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