A regression-content analysis approach to assess public satisfaction with shared mobility measures against COVID-19 pandemic

IF 3.2 3区 工程技术 Q2 PUBLIC, ENVIRONMENTAL & OCCUPATIONAL HEALTH
Boniphace Kutela , Nikhil Menon , Jacob Herman , Cuthbert Ruseruka , Subasish Das
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Abstract

Introduction

The transportation sector was severely impacted by the COVID-19 pandemic, with shared mobility services being the most affected due to concerns from the public regarding the high likelihood of being a vector of the virus. Although studies have evaluated the impact of the COVID-19 pandemic on shared mobility, a deeper understanding of public satisfaction with the measures adopted during COVID-19 has not been explored.

Methods

This study utilized data collected in the Summer of 2020 across the United States to fill that literature gap. The study applied Ordered Probit (OP) models to explore the factors influencing an individual's confidence in not contracting COVID-19 while using shared mobility modes and Text Network Analysis (TNA) to understand the deeper reasons for their confidence levels.

Results

Results show a significant influence of sociodemographic factors, land-use/built environment, pre- and post-COVID travel behavior, and activity participation on respondents’ level of confidence for not contracting COVID-19. Only frequent public transit users showed that they have high confidence in not getting COVID-19 when they use any of the shared mobility options, while people who did not use public transit and those who frequently attend telehealth meetings had low confidence in the measures adopted by shared mobility providers. Furthermore, the text mining results indicated that cleanness was the key theme regardless of the confidence level of the respondents, except for rail and bus transit. However, we observed other patterns of themes across the types of shared mobility.

Conclusions

The study findings can be beneficial in the future to improve ridership during pandemics by considering perceptions and satisfactions of various users.

采用回归-内容分析法评估公众对针对 COVID-19 大流行的共享流动措施的满意度
导言交通部门受到 COVID-19 大流行的严重影响,其中共享交通服务受到的影响最大,因为公众担心共享交通服务极有可能成为病毒的传播媒介。虽然已有研究评估了 COVID-19 大流行对共享交通的影响,但尚未深入了解公众对 COVID-19 期间所采取措施的满意度。研究采用了有序推理(OP)模型来探索影响个人对不签署 COVID-19 的信心的因素,同时使用共享移动模式和文本网络分析(TNA)来了解其信心水平的深层原因。结果结果显示,社会人口因素、土地使用/建筑环境、COVID 前后的出行行为以及活动参与度对受访者对不签署 COVID-19 的信心水平有显著影响。只有经常乘坐公共交通的受访者表示在使用任何一种共享出行方式时对不会感染 COVID-19 有较高的信心,而不乘坐公共交通的受访者和经常参加远程医疗会议的受访者则对共享出行服务提供商采取的措施信心不足。此外,文本挖掘结果表明,除轨道交通和公共汽车外,无论受访者的信心水平如何,清洁都是关键主题。然而,我们也观察到了不同类型共享交通的其他主题模式。结论这项研究的结果有助于未来通过考虑不同用户的看法和满意度来提高大流行病期间的乘车率。
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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来源期刊
CiteScore
6.10
自引率
11.10%
发文量
196
审稿时长
69 days
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