Inferring mobility of care travel behavior from transit smart fare card data

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS
Awad Abdelhalim , Daniela Shuman , Anson F. Stewart , Kayleigh B. Campbell , Mira Patel , Gabriel L. Pincus , Inés Sánchez de Madariaga , Jinhua Zhao
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引用次数: 0

Abstract

Existing research underscores substantial gender-based variations in travel behavior on public transit. Studies have concluded that these differences are largely attributable to household responsibilities typically falling disproportionately on women, leading to women being more likely to utilize transit for purposes referred to by the umbrella concept of “Mobility of Care”. In contrast to past studies that have quantified the impact of gender using survey and qualitative data, we examine a novel data-driven workflow utilizing a combination of previously developed origin, destination, and transfer inference (ODX) based on individual transit fare card transactions, name-based gender inference, and geospatial analysis as a framework to identify mobility of care trip making. We apply this framework to data from the Washington Metropolitan Area Transit Authority (WMATA). Analyzing data from millions of journeys conducted in the first quarter of 2019, the results of this study show that our proposed workflow can identify mobility of care travel behavior, both in terms of (1) detecting times and places of interest where the share of women travelers in an equally-sampled subset (on basis of inferred gender) of transit users is 10 %–15 % higher than that of men, and (2) finding women significantly more likely to exhibit a consistent accompaniment patterns with riders who are children, elderly, or people with disabilities. The workflow presented in this study provides a blueprint for combining transit origin-destination data, inferred customer demographics, and geospatial analyses enabling public transit agencies to assess, at the fare card level, the gendered impacts of different policy and operational decisions.

从公交智能票卡数据推断护理人员的流动性出行行为
现有研究强调,在乘坐公共交通出行的行为中,存在着很大的性别差异。研究认为,这些差异在很大程度上归因于家庭责任通常过多地由女性承担,导致女性更有可能出于 "照顾他人的流动性 "这一总括概念所提及的目的而乘坐公交车。与以往利用调查和定性数据量化性别影响的研究不同,我们研究了一种新颖的数据驱动工作流程,将之前开发的基于个人公交卡交易的出发地、目的地和换乘推断(ODX)、基于姓名的性别推断和地理空间分析相结合,作为识别护理出行的框架。我们将这一框架应用于华盛顿都会区交通管理局(WMATA)的数据。通过分析 2019 年第一季度进行的数百万次出行数据,本研究的结果表明,我们提出的工作流程可以在以下两个方面识别出流动性护理出行行为:(1)检测出在同等采样的公交用户子集中(基于推断的性别),女性乘客的比例比男性乘客高出 10%-15% 的时间和地点;(2)发现女性乘客更有可能与儿童、老人或残疾人乘客表现出一致的陪伴模式。本研究中介绍的工作流程提供了一个蓝图,可将公交始发站数据、推断出的乘客人口统计数据和地理空间分析结合起来,使公共交通机构能够在票卡层面评估不同政策和运营决策对性别的影响。
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
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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