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Analysis of decision tree classification algorithm based on attribute reduction and application in criminal behavior

机译:基于属性约简的决策树分类算法分析及在犯罪行为中的应用

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In this paper, the attribute reduction strategy is syncretized into classification algorithm of the decision tree and applied to criminal behavior analysis. Finding implicit knowledge in the criminal database by this method can utilized to assist making decision for police quickly and accurately. The classification algorithm of the decision tree based on rough set is proposed for multi-attribute data table. The scale of decision tree and branches is minished and the reliability is improved via attribute reduction. Successful application in the analysis of criminal behavior shows the feasibility of the algorithm.
机译:本文将属性约简策略融合到决策树的分类算法中,并应用于犯罪行为分析。通过这种方法在犯罪数据库中寻找隐性知识,可以帮助警方快速,准确地做出决策。针对多属性数据表,提出了一种基于粗糙集的决策树分类算法。决策树和分支的规模最小化,并且通过属性约简提高了可靠性。在犯罪行为分析中的成功应用证明了该算法的可行性。

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