Regional comparison of socio-demographic variation in urban E-scooter usage

IF 2.6 3区 经济学 Q2 ENVIRONMENTAL STUDIES Environment and Planning B: Urban Analytics and City Science Pub Date : 2024-03-26 DOI:10.1177/23998083241240195
Priyanka Verma, Grant McKenzie
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Abstract

In recent years we have witnessed explosive growth in the shared, free-floating, electric scooter industry. While still controversial in many North American cities, a number of large e-scooter operators have managed to carve out a piece of the urban transportation landscape. As these vehicles shift from novelty services to increasingly reliable modes of short personal travel, the discussion has turned to investigating who exactly benefits from these micromobility services and who are being left behind. Though population surveys have been administered to identify the socio-demographic characteristics of e-scooter riders in the past, little work has linked these characteristics through trips, or investigated the regional variation in these demographic factors. In this work we explore the variability and similarities in e-scooter rider characteristics across three major U.S. cities. To accomplish this, we apply a Moran’s Eigenvector Spatial Filtering linear regression model and compare our results to more commonly used spatial regression approaches. Our results indicate that the spatial filtering approach outperforms other methods in identifying socio-demographic characteristics of e-scooter users, across multiple regions. We find that many socio-demographics associated with e-scooter usage are regionally variant, despite younger users making up the core user base in all cities. There are variations in usage based on gender, income, and race across cities with Black and Hispanic populations remaining underserved. The implications of these findings are discussed.
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城市电动摩托车使用率的社会人口变化区域比较
近年来,我们见证了共享、自由浮动电动滑板车行业的爆炸式增长。尽管在北美许多城市仍存在争议,但一些大型电动滑板车运营商已成功在城市交通领域分得一杯羹。随着这些车辆从新奇的服务转变为日益可靠的短途个人出行方式,人们开始讨论究竟谁能从这些微型交通服务中获益,谁又被抛在后面。虽然过去曾进行过人口调查,以确定电动摩托车骑行者的社会人口特征,但很少有研究将这些特征与出行联系起来,或调查这些人口因素的地区差异。在这项研究中,我们探讨了美国三大城市电动摩托车骑行者特征的差异性和相似性。为此,我们采用了莫兰特征向量空间过滤线性回归模型,并将结果与更常用的空间回归方法进行了比较。我们的结果表明,在跨区域识别电动摩托车用户的社会人口特征方面,空间过滤方法优于其他方法。我们发现,尽管年轻用户是所有城市的核心用户群,但与电动滑板车使用相关的许多社会人口特征都存在地区差异。各城市的使用情况因性别、收入和种族而异,黑人和西班牙裔人口的使用率仍然偏低。本文讨论了这些发现的意义。
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来源期刊
CiteScore
6.10
自引率
11.40%
发文量
159
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