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Graph Restrictions for Signal Processing of Homicides Data

机译:仿真数据信号处理的图表限制

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Relative to other types of crime, homicides are statistically more challenging due to its sparsity and low frequency. To overcome this problem and based on previous works, we propose a methodology that combines the signal processing capabilities of the Graph Laplacian of Gaussian (GLoG) filter and the inclusion of related types of crimes with kernel warping. We compare our model with the results obtained in those previous works and with benchmark models from other papers. We found that the combination of both methodologies results in an improvement of the model and fares well with the benchmark models.
机译:由于其他类型的犯罪,由于其稀疏性和低频,凶杀案是统计上更具挑战性的。 为了克服这个问题并基于以前的作品,我们提出了一种方法,该方法结合了高斯(GLOG)过滤器的图拉普拉斯的信号处理能力以及将相关类型的犯罪与核翘曲的纳入。 我们将模型与以前的作品中获得的结果进行比较,以及来自其他文件的基准模型。 我们发现两种方法的组合导致模型和与基准模型的频道改进。

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