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Inferring individual daily activities from mobile phone traces: A Boston example

机译:通过手机跟踪推断个人的日常活动:波士顿的一个例子

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摘要

Understanding individual daily activity patterns is essential for travel demand management and urban planning. This research introduces a new method to infer individuals' activities from their mobile phone traces. Using Metro Boston as an example, we develop an activity detection model with travel diary surveys to reveal the common laws governing individuals' activity participation, and apply the modeling results to mobile phone traces to extract the embedded activity information. The proposed approach enables us to spatially and temporally quantify, visualize, and examine urban activity landscapes in a metropolitan area and provides real-time decision support for the city. This study also demonstrates the potential value of combining new "big data" such as mobile phone traces and traditional travel surveys to improve transportation planning and urban planning and management.
机译:了解个人的日常活动模式对于旅行需求管理和城市规划至关重要。这项研究引入了一种新方法,可以根据他们的手机轨迹推断个人的活动。以波士顿地铁为例,我们通过旅行日记调查开发了一个活动检测模型,以揭示支配个人活动参与的一般规律,并将建模结果应用于手机轨迹,以提取嵌入的活动信息。所提出的方法使我们能够在时空上量化,可视化和检查大都市地区的城市活动景观,并为城市提供实时决策支持。这项研究还展示了结合新的“大数据”(如手机踪迹和传统旅行调查)以改善交通规划以及城市规划和管理的潜在价值。

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