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Customer Relationship Management Using Partial Focus Feature Reduction

机译:客户关系管理使用部分焦点特征减少

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Effective data mining solutions have for long been anticipated in Customer Relationship Management (CRM) to accurately predict customer behavior, but in a lot of research works we have observed sub-optimal CRM classification models due to inferior data quality inherent to CRM data set. This paper is proposed to present our new classification framework, termed Partial Focus Feature Reduction, poised to resolve CRM data set with Reduced Dimensionality using a collection of efficient data preprocessing techniques characterizing a specially tailored modality grouping method to significantly improve feature relevancy as well as reducing the cardinality of the features to reduce computational cost. The resulting model yields very good performance result on a large complicated real-world CRM data set that is much better than ones from complex models developed by renowned data mining practitioners despite all data anomalies.
机译:有效的数据挖掘解决方案长期以来一直预期客户关系管理(CRM),以准确预测客户行为,但在很多研究工作中,由于CRM数据集所固有的较差的数据质量,我们观察到次优CRM分类模型。提出了本文提出了我们的新分类框架,称为部分焦点特征减少,准备解决CRM数据集,使用一系列有效的数据预处理技术,其特征在于特殊定制的模态分组方法,以显着提高特征性相关性以及还原减少计算成本的特征的基数。结果模型在大型复杂的真实世界CRM数据集上产生了非常好的性能,这比来自着名的数据挖掘从业者开发的复杂模型的大得多,尽管所有数据异常,那么大大。

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