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Characterization and detection of taxpayers with false invoices using data mining techniques

机译:使用数据挖掘技术对带有虚假发票的纳税人进行表征和检测

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摘要

In this paper we give evidence that it is possible to characterize and detect those potential users of false invoices in a given year, depending on the information in their tax payment, their historical performance and characteristics, using different types of data mining techniques. First, clustering algorithms like SOM and neural gas are used to identify groups of similar behaviour in the universe of taxpayers. Then decision trees, neural networks and Bayesian networks are used to identify those variables that are related to conduct of fraud and/or no fraud, detect patterns of associated behaviour and establishing to what extent cases of fraud and/or no fraud can be detected with the available information. This will help identify patterns of fraud and generate knowledge that can be used in the audit work performed by the Tax Administration of Chile (in Spanish Servicio de Impuestos Internos (SII)) to detect this type of tax crime.
机译:在本文中,我们提供了证据,表明可以使用不同类型的数据挖掘技术,根据给定年份的虚假发票的信息,其历史表现和特征,来表征和检测那些潜在的虚假发票用户。首先,使用SOM和神经毒气之类的聚类算法来识别纳税人群体中相似行为的组。然后,使用决策树,神经网络和贝叶斯网络来识别与欺诈和/或无欺诈行为相关的那些变量,检测相关行为的模式,并确定在多大程度上可以检测到欺诈和/或无欺诈案例。可用信息。这将有助于识别欺诈模式,并产生可用于智利税务局(以西班牙文的Servicio de Impuestos Internos(SII)进行)的审计工作中发现的知识,以检测此类税收犯罪。

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