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Estimating Potential Demand of Bicycle Trips from Mobile Phone Data—An Anchor-Point Based Approach

机译:根据手机数据估算自行车出行的潜在需求-一种基于锚点的方法

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This study uses a large-scale mobile phone dataset to estimate potential demand of bicycle trips in a city. By identifying two important anchor points (night-time anchor point and day-time anchor point) from individual cellphone trajectories, this study proposes an anchor-point based trajectory segmentation method to partition cellphone trajectories into trip chain segments. By selecting trip chain segments that can potentially be served by bicycles, two indicators ( inflow and outflow ) are generated at the cellphone tower level to estimate the potential demand of incoming and outgoing bicycle trips at different places in the city and different times of a day. A maximum coverage location-allocation model is used to suggest locations of bike sharing stations based on the total demand generated at each cellphone tower. Two measures are introduced to further understand characteristics of the suggested bike station locations: (1) accessibility; and (2) dynamic relationships between incoming and outgoing trips. The accessibility measure quantifies how well the stations could serve bicycle users to reach other potential activity destinations. The dynamic relationships reflect the asymmetry of human travel patterns at different times of a day. The study indicates the value of mobile phone data to intelligent spatial decision support in public transportation planning.
机译:本研究使用大型手机数据集来估算城市中自行车出行的潜在需求。通过从单个手机轨迹中识别出两个重要的锚点(夜间锚点和白天锚点),本研究提出了一种基于锚点的轨迹分割方法,将手机轨迹划分为旅行链段。通过选择可能由自行车提供服务的旅行链段,在手机信号塔级会生成两个指标(流入和流出),以估计在城市中不同地方和一天中不同时间进出自行车的潜在需求。最大覆盖位置分配模型用于根据每个手机信号塔产生的总需求来建议自行车共享站的位置。引入了两种措施来进一步了解建议的自行车站位置的特征:(1)可达性; (2)出入境旅行之间的动态关系。可达性度量标准量化了车站可以为自行车使用者提供服务以达到其他潜在活动目的地的程度。动态关系反映了一天中不同时间的人类出行方式的不对称性。该研究表明,手机数据对于公共交通规划中智能空间决策支持的价值。

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