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Incorporating the impact of spatio-temporal interactions on bicycle sharing system demand: A case study of New York CitiBike system

机译:纳入时空交互对自行车共享系统需求的影响:以纽约CitiBike系统为例

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摘要

Recent success of bicycle-sharing systems (BSS) have led to their growth around the world. Not surprisingly, there is increased research towards better understanding of the contributing factors for BSS demand. However, these research efforts have neglected to adequately consider spatial and temporal interaction of BSS station's demand (arrivals and departures). It is possible that bicycle arrival and departure rates of one BSS station are potentially inter connected with bicycle flow rates for neighboring stations. It is also plausible that the arrival and departure rates at one time period are influenced by the arrival and departure rates of earlier time periods for that station and neighboring stations. Neglecting the presence of such effects, when they are actually present will result in biased model estimates. The major objective of this study is to accommodate for spatial and temporal effects (observed and unobserved) for modelling bicycle demand employing data from New York City's bicycle-sharing system (CitiBike). Towards this end, spatial error and spatial lag models that accommodate for the influence of spatial and temporal interactions are estimated. The exogenous variables for these models are drawn from BSS infrastructure, transportation network infrastructure, land use, point of interests, and meteorological and temporal attributes. The results provide strong evidence for the presence of spatial and temporal dependency for BSS station's arrival and departure rates. A hold out sample validation exercise further emphasizes the improved accuracy of the models with spatial and temporal interactions. (C) 2016 Elsevier Ltd. All rights reserved.
机译:自行车共享系统(BSS)的最新成功已导致其在世界范围内的发展。毫不奇怪,越来越多的研究致力于更好地了解BSS需求的影响因素。但是,这些研究工作忽略了充分考虑BSS电台需求(到达和离开)的时空相互作用。一个BSS站点的自行车到达和离开速度可能与相邻站点的自行车流量相互关联。某个时间段的到达和离开速度受该站和相邻站较早时间段的到达和离开速度的影响也是合理的。忽略这些影响的存在,而实际存在时,则会导致模型估计有偏差。这项研究的主要目的是利用纽约市自行车共享系统(CitiBike)的数据,为模拟自行车需求提供空间和时间影响(可观察和不可观察)。为此,估计了适应空间和时间相互作用影响的空间误差和空间滞后模型。这些模型的外生变量来自BSS基础设施,交通网络基础设施,土地利用,兴趣点以及气象和时间属性。结果提供了有力的证据证明BSS电台的到达和离开速度存在时空依赖性。坚持样本验证练习进一步强调了具有空间和时间交互作用的模型的提高的准确性。 (C)2016 Elsevier Ltd.保留所有权利。

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