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The Pattern Next Door: Towards Spatio-sequential Pattern Discovery

机译:隔壁的模式:迈向空间顺序模式发现

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Health risks management, such as epidemics study produces large quantity of spatio-temporal data. The development of new methods able to manage such specific characteristics becomes crucial. To tackle this problem, we define a theoretical framework for extracting spatio-temporal patterns (sequences representing evolution of locations and their neighborhoods over time). Classical frequency support doesn't consider the pattern neighbor neither its evolution over time. We thus propose a new interestingness measure taking into account both spatial and temporal aspects. An algorithm based on pattern-growth approach with efficient successive projections over the database is proposed. Experiments conducted on real datasets highlight the relevance of our method.
机译:健康风险管理(例如流行病学研究)会产生大量的时空数据。能够管理这些特定特征的新方法的开发变得至关重要。为了解决这个问题,我们定义了一个提取时空模式(代表位置及其邻域随时间演变的序列)的理论框架。经典的频率支持既不考虑模式,也不考虑其随时间的演变。因此,我们提出了一种同时考虑空间和时间方面的新的兴趣度度量。提出了一种基于模式增长算法的高效连续投影算法。在真实数据集上进行的实验突出了我们方法的相关性。

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