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Mining Network Hotspots with Holes: A Summary of Results

机译:带有孔的采矿网络热点:结果摘要

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摘要

Given a spatial network and a collection of activities (e.g. crime locations), the problem of Mining Network Hotspots with Holes (MNHH) finds network hotspots with doughnut shaped spatial footprint, where the concentration of activities is unusually high (e.g. statistically significant). MNHH is important for societal applications such as criminology, where it may focus the efforts of officials to identify a crime source. MNHH is challenging because of the large number of candidates and the high computational cost of statistical significance test. Previous work focused either on geometry based hotspots (e.g. circular, ring-shaped) on Euclidean space or connected subgraphs (e.g. shortest path), limiting the ability to detect statistically significant hotspots with holes on a spatial network. This paper proposes a novel Network Hotspot with Hole Generator (NHHG) algorithm to detect network hotspots with holes. The proposed algorithm features refinements that improve the performance of a naive approach. Case studies on real crime datasets confirm the superiority of NHHG over previous approaches. Experimental results on real data show that the proposed approach yields substantial computational savings without reducing result quality.
机译:给定一个空间网络和一系列活动(例如犯罪地点),带有孔的网络热点采矿(MNHH)问题发现了具有甜甜圈形状的空间足迹的网络热点,其中活动的集中度异常高(例如统计上显着)。 MNHH对于诸如犯罪学之类的社会应用很重要,在该应用中,MNHH可能会集中官员的努力以查明犯罪来源。 MNHH具有挑战性,因为候选人数量众多且统计显着性检验的计算成本很高。先前的工作要么专注于欧几里得空间上基于几何的热点(例如圆形,环形),要么涉及相连的子图(例如最短路径),从而限制了在空间网络上检测具有统计意义的热点的能力。提出了一种新颖的带孔发生器的网络热点(NHHG)算法,用于检测带孔的网络热点。所提出的算法具有改进的特性,可以改善幼稚方法的性能。对真实犯罪数据集的案例研究证实了NHHG优于以前的方法。在真实数据上的实验结果表明,所提出的方法在不降低结果质量的情况下节省了大量计算量。

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