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Modeling bike-sharing demand using a regression model with spatially varying coefficients

机译:使用具有空间变化系数的回归模型建模自行车共享需求

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摘要

As an emerging mobility service, bike-sharing has become increasingly popular around the world. A critical question in planning and designing bike-sharing services is to know how different factors, such as land-use and built environment, affect bike-sharing demand. Most research investigated this problem from a holistic view using regression models, where assume the factor coefficients are spatially homogeneous. However, ignoring the local spatial effects of different factors is not tally with facts. Therefore, we develop a regression model with spatially varying coefficients to investigate how land use, social-demographic, and transportation infrastructure affect the bike-sharing demand at different stations to address this problem. Unlike existing geographically weighted models, we define station-specific regression and use a graph structure to encourage nearby stations to have similar coefficients. Using the bike-sharing data from the BIXI service in Montreal, we showcase the spatially varying patterns in the regression coefficients and highlight more sensitive areas to the marginal change of a specific factor. The proposed model also exhibits superior out-of-sample prediction power compared with traditional machine learning models and geostatistical models.
机译:作为新兴的流动性服务,自行车分享越来越受到世界各地的流行。规划和设计自行车共享服务的关键问题是了解如何不同的因素,例如土地使用和建筑环境,影响自行车共享需求。大多数研究从使用回归模型的全面视图研究了这个问题,其中假设因子系数是空间均匀的。然而,忽略不同因素的局部空间效应并没有与事实无关。因此,我们开发一个回归模型,具有空间不同的系数,调查土地利用,社会人口和运输基础设施如何影响不同站的自行车共享需求,以解决这个问题。与现有的地理加权模型不同,我们定义特定的站点回归,并使用图形结构来鼓励附近站具有类似的系数。使用来自蒙特利尔的BIXI服务的自行车共享数据,我们在回归系数中展示了空间变化的模式,并突出了比特定因素的边际变化更敏感的区域。与传统机器学习模型和地统计模型相比,该拟议的模型也表现出优越的样本预测功率。

著录项

  • 来源
    《Journal of Transport Geography》 |2021年第5期|103059.1-103059.12|共12页
  • 作者单位

    McGill Univ Dept Civil Engn Montreal PQ H3A 0C3 Canada|Interuniv Res Ctr Enterprise Networks Logist & Tr Montreal PQ H3T 1J4 Canada;

    McGill Univ Dept Civil Engn Montreal PQ H3A 0C3 Canada|Interuniv Res Ctr Enterprise Networks Logist & Tr Montreal PQ H3T 1J4 Canada;

    Polytech Montreal Dept Math & Ind Engn Montreal PQ H3T 1J4 Canada|Interuniv Res Ctr Enterprise Networks Logist & Tr Montreal PQ H3T 1J4 Canada;

    McGill Univ Dept Civil Engn Montreal PQ H3A 0C3 Canada|Interuniv Res Ctr Enterprise Networks Logist & Tr Montreal PQ H3T 1J4 Canada;

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

    Bike-sharing system; Spatially varying coefficients; Spatial prediction; Land use and built environment;

    机译:自行车共享系统;空间不同的系数;空间预测;土地使用和建筑环境;

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