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Exploiting Semantic Annotations for Clustering Geographic Areas and Users in Location-Based Social Networks

机译:利用基于位置的社交网络聚类地理区域和用户的语义注释

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Location-Based Social Networks (LBSN) present so far the most vivid realization of the convergence of the physical and virtual social planes. In this work we propose a novel approach on modeling human activity and geographical areas by means of place categories. We apply a spectral clustering algorithm on areas and users of two metropolitan cities on a dataset sourced from the most vibrant LBSN, Foursquare. Our methodology allows the identification of user communities that visit similar categories of places and the comparison of urban neighborhoods within and across cities. We demonstrate how semantic information attached to places could be plausibly used as a modeling interface for applications such as recommender systems and digital tourist guides.
机译:迄今为止存在基于位置的社交网络(LBSN)最鲜明地实现了物理和虚拟社会平面的融合。在这项工作中,我们提出了一种通过地点类别建模人类活动和地理区域的新方法。我们在来自最多充满活力的LBSN,FourSquare的数据集上应用了一个谱聚类算法和两个大都市城市的用户。我们的方法允许识别访问类似类别的用户社区以及城市内部和跨城市社区的比较。我们展示了附加到地点的语义信息如何合理地用作推荐系统和数字旅游指南等应用的建模界面。

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