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Classification Model Based on Association Rules in Customs Risk Management Application

机译:基于关联规则的海关风险管理分类模型

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At present, detecting customs declaration frauds with limited examination of imported goods by available scarce resources is posing considerable challenge to the customs authorities world over. Data mining techniques could be utilized to sift through the past data and develop predictive model for examination of limited goods with higher probability of fraud. This paper puts forward a classification data mining method based on association rules. Following the analysis on customs inspection results and the exploration on the regularity of “non-consistent between customs declaration and actual commodity” by use of data mining based on association rules, a classification model is established to predict the risk of commodity through customs clearance and form the reference for customs inspection and monitoring.
机译:目前,通过可用的稀缺资源来对进口货物进行有限的检查来检测海关申报欺诈,这对世界各地的海关当局构成了巨大的挑战。可以利用数据挖掘技术筛选过去的数据,并开发预测模型,以检查具有较高欺诈可能性的有限商品。提出了一种基于关联规则的分类数据挖掘方法。通过对海关检查结果的分析和基于关联规则的数据挖掘对“报关单与实物之间不一致”的规律性的探索,建立了分类模型,通过清关和清关预测商品的风险。形成海关检查和监控的参考。

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