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Mining Individual Similarity by Assessing Interactions with Personally Significant Places from GPS Trajectories

机译:通过从GPS轨迹评估与个人重要地点的互动来挖掘个人相似性

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Human mobility is closely associated with places. Due to advancements in GPS devices and related sensor technologies, an unprecedented amount of tracking data has been generated in recent years, thus providing a new way to investigate the interactions between individuals and places, which are vital for depicting individuals’ characteristics. In this paper, we propose a framework for mining individual similarity based on long-term trajectory data. In contrast to most existing studies, which have focused on the sequential properties of individuals’ visits to public places, this paper emphasizes the essential role of the spatio-temporal interactions between individuals and their personally significant places. Specifically, rather than merely using public geographic databases, which include only public places and lack personal meanings, we attempt to interpret the semantics of places that are significant to individuals from the perspectives of personal behavior. Next, we propose a new individual similarity measurement that incorporates both the spatio-temporal and semantic properties of individuals’ visits to significant places. By experimenting on real-world GPS datasets, we demonstrate that our approach is more capable of distinguishing individuals and characterizing individual features than the previous methods. Additionally, we show that our approach can be used to effectively measure individual similarity and to aggregate individuals into meaningful subgroups.
机译:人口流动与地方紧密相关。由于GPS设备和相关传感器技术的进步,近年来已产生了前所未有的跟踪数据,从而提供了一种新的方式来调查个人与地点之间的互动,这对于描绘个人特征至关重要。在本文中,我们提出了一个基于长期轨迹数据的个体相似性挖掘框架。与大多数现有研究侧重于个人访问公共场所的顺序特性相反,本文强调了个人与其个人重要场所之间时空相互作用的重要作用。具体而言,我们不仅尝试使用仅包含公共场所且缺乏个人含义的公共地理数据库,还尝试从个人行为的角度解释对个人重要的场所的语义。接下来,我们提出了一种新的个体相似性度量,该度量将个体访问重要地点的时空和语义特性都纳入考虑范围。通过在现实世界中的GPS数据集上进行实验,我们证明了我们的方法比以前的方法更能区分个人并表征个人特征。此外,我们证明了我们的方法可用于有效地衡量个体相似性并将个体聚集到有意义的亚组中。

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