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- W3094654472 abstract "A collection of individuals is represented by point patterns. Each individual is a finite set of geographical locations representing their visiting pattern to places in a region. We present SCPP, an algorithm for clustering these individuals considering the spatial patterns of their visiting locations. We adopted a probabilistic framework based on the theory of point processes that allows us to derive a non-obvious distance metric between each individual point pattern and the underlying, unobserved continuous intensity function. This metric is the Kullback-Leibler divergence between the true data-generating point process distribution and the model-generating distribution. We also introduce a theoretically based framework for the cost function to be minimized, a functional T (P) taking as arguments the probability distributions underlying the unknown clusters. We present an extensive experimental analysis to show SCPP’s effectiveness using several synthetic datasets and spatial mobility patterns from geo-tagged social media." @default.
- W3094654472 created "2020-11-09" @default.
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- W3094654472 date "2020-10-29" @default.
- W3094654472 modified "2023-09-27" @default.
- W3094654472 title "SCPP" @default.
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- W3094654472 doi "https://doi.org/10.1145/3423405" @default.
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