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Construction of Bayesian Classifiers with GA for Response Modeling in Direct Marketing

机译:基于遗传算法的贝叶斯分类器在直接营销中的响应建模

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In this paper, a Bayesian classifier for modeling consumer response to direct marketing is constructed based on a novel genetic algorithm (GA). To evaluate the performance of this model, we test it with a large amount of validation data of direct marketing and compare the results with other benchmark methods, including Recency-Frequency-Monetary (RFM) analysis, Chi-Square automatic interaction detector (CHAID), Logistic regression (LR) and so on. The results demonstrate the superiority of this model over the others in terms of accuracy of prediction and interpretable of results. Recently, it has been adopted by a credit card company to effectively handle business problems.
机译:在本文中,基于新型遗传算法(GA)构造了贝叶斯分类器,用于建模消费者对直销的反应。为了评估该模型的性能,我们使用了大量的直接营销验证数据对其进行了测试,并将结果与​​其他基准方法进行了比较,包括新近度-频率-货币(RFM)分析,卡方自动交互检测器(CHAID) ,逻辑回归(LR)等。结果表明,该模型在预测的准确性和结果的可解释性方面优于其他模型。最近,它已被信用卡公司采用以有效地处理业务问题。

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