犯罪及其社会背景:基于自组织地图的分析

Xingan Li, M. Juhola
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引用次数: 9

摘要

数据挖掘和可视化技术在各个领域都显示出其价值,但尚未广泛应用于犯罪研究,需要一种高效、有效地分析现有数据的工具。本研究的目的是应用自组织地图(SOM)来绘制具有不同社会经济发展状况的国家。辅以其他方法,包括用于属性选择的散射计数器,以及用于获得比较结果的最近邻搜索、判别分析和决策树,SOM是通过处理多变量数据来映射犯罪现象的有用工具。
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Crime and Its Social Context: Analysis Using the Self-Organizing Map
Data mining and visualization techniques show their value in various domains but have not been broadly applied to the study of crime, which is in demand of an instrument to efficiently and effectively analyze available data. The purpose of this study is to apply the Self-Orgamizing Map (SOM) to mapping countries with different situations of socio-economic development. Supplemented by other methods, including Scatter Counter for attribute selection, and nearest neighbor search, discriminant analysis and decision trees for obtaining comparable results, the SOM is found to be a useful tool for mapping criminal phenomena through processing of multivariate data.
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