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Non-linear associations between built environment and active travel for working and shopping: An extreme gradient boosting approach

机译:建筑环境与工作和购物的活动旅行之间的非线性关联:极其渐变升压方法

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摘要

Active travel has environmental, social, and public health-related benefits. Researchers from diverse domains have extensively studied built-environment associations with active travel. However, limited attention has been paid to distinguishing the associations between built environment characteristics at both the origins and destinations and active travel for working and shopping. Scholars have started to examine non-linear associations of built environment with travel behaviour, but active travel has seldom been a focus. Therefore, this study, selecting Xiamen, China, as the case, utilises a state-of-the-art machine learning method (i.e., extreme gradient boosting) to explore the non-linear associations between built environment and active travel for working and shopping. Our findings are as follows. (1) For both purposes, trip characteristics contribute the greatest, and the built environment is also quite important and has larger collective contributions for active travel than does socioeconomics. (2) The relative importance of built environment on active travel for shopping is evidently larger than that for working. (3) All built-environment variables have non-linear associations with active travel, and associations with active travel for working are generally in inverted U or V shapes, while those with shopping trips have much more complex patterns. (4) Differences in the threshold value and gradient exist between built-environment associations with active travel for working and shopping and between variables at origins and destinations. Decision makers are recommended to meticulously disentangle the complex influences of built environment on active travel and distinguish between diverse purposes to make informed and targeted interventions.
机译:积极的旅行有环境,社会和公共卫生相关的利益。来自不同域的研究人员已经广泛地研究了带有主动旅行的内置环境协会。然而,有限的注意力为区分内部和目的地的建筑环境特征与工作和购物的积极旅行之间的关联。学者已经开始研究建造环境的非线性协会与旅行行为,但积极的旅行很少是焦点。因此,本研究选择厦门,中国的情况,利用最先进的机器学习方法(即极端梯度提升)来探索建筑环境与工作和购物的活动旅行之间的非线性关联。我们的研究结果如下。 (1)对于这两个目的,旅行特征贡献最大,建筑环境也非常重要,并且积极旅行的集体贡献比社会经济研究更重要。 (2)建筑环境对购物的积极旅行的相对重要性显然大于工作。 (3)所有内置环境变量都具有与主动旅行的非线性关联,而具有活动行程的关联通常是反相U或V形状,而具有购物旅行的人则具有更复杂的模式。 (4)在内置环境关联之间存在阈值和梯度的差异,用于工作和购物的活动行程以及起源和目的地的变量之间。决策者建议精心解开建筑环境对积极旅行的复杂影响,并区分各种目的,以获取知情和有针对性的干预措施。

著录项

  • 来源
    《Journal of Transport Geography》 |2021年第4期|103034.1-103034.12|共12页
  • 作者单位

    Sun Yat Sen Univ Sch Geog & Planning Room E212 Dihuan Bldg 135 Xingang West Rd Guangzhou 510275 Peoples R China|Univ Hong Kong Dept Urban Planning & Design Hong Kong Peoples R China;

    Sun Yat Sen Univ Sch Geog & Planning Room E212 Dihuan Bldg 135 Xingang West Rd Guangzhou 510275 Peoples R China|Guangdong Lab Southern Marine Sci & Engn Zhuhai Peoples R China;

    City Univ Hong Kong Dept Architecture & Civil Engn Hong Kong Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Non-linearity; Built environment; Active travel; Working and shopping; Gradient boosting decision tree;

    机译:非线性;建筑环境;活动旅行;工作和购物;渐变升压决策树;

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