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Crime Analysis of spatial-temporal distribution based on KNN Algorithm

机译:基于KNN算法的空间分布犯罪分析

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With the rapid advance of global urbanization, the problem of urban crime is becoming more and more serious, which brings a great challenge to the police all over the world. How to use big data to drive police work has become the hot and difficult point of crime research. In this paper, the research object is theft, battery, narcotics and criminal damage in Chicago. The research method is to use visualization technology and machine learning algorithm to predict the spatial distribution of crime. Firstly, the spatial distribution characteristics of crime occurrence are analyzed by the methods of neighborhood repetition and spatial analysis. Then, the spatial distribution map of aggregated data and the crime distribution heat map are visualized. Finally, we combine the theory of crime distribution to further analyze the spatial-temporal distribution features of several crimes and criminal symbiosis.
机译:随着全球城市化的快速发展,城市犯罪问题越来越严重,这为世界各地的警察带来了极大的挑战。 如何利用大数据推动警察工作已成为犯罪研究的热点和难点。 在本文中,研究对象是芝加哥盗窃,电池,毒品和刑事损害。 研究方法是使用可视化技术和机器学习算法来预测犯罪的空间分布。 首先,通过邻次重复和空间分析的方法分析犯罪的空间分布特征。 然后,可视化聚集数据和犯罪分配热图的空间分布图。 最后,我们结合了犯罪分配理论,进一步分析了几个犯罪和犯罪分组的空间分布特征。

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