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Uniformly subsampled ensemble (USE) for churn management: Theory and implementation

机译:用于流失管理的统一子采样合奏(USE):理论与实现

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摘要

The present paper explores the possible application of a new ensemble model. The model, which is based on multiple SVM classifiers, is employed to address churner identification problems in the mobile telecommunication industry, a sector in which the role of customer retention program becomes increasingly important due to its very competitive business environment. In particular, the current study introduces a uniformly subsampled ensemble (USE) model of SVM classifiers, not only to reduce the computational complexity of large-scale data, but also to boost the reliability and accuracy of calibrated models on data sets with highly skewed class distributions. According to our experiments, the performance of the USE SVM model is superior compared to all single and ensemble models. It is more scalable than well-known ensemble models as well.
机译:本文探讨了新的集成模型的可能应用。该模型基于多个SVM分类器,用于解决移动电信行业中的客户识别问题,在该行业中,客户保留程序的作用因其竞争激烈的商业环境而变得越来越重要。特别是,当前的研究引入了SVM分类器的统一二次采样集成(USE)模型,不仅可以降低大规模数据的计算复杂性,而且可以提高高度偏斜的数据集上校准模型的可靠性和准确性。分布。根据我们的实验,USE SVM模型的性能优于所有单一模型和集成模型。它也比著名的集成模型更具可伸缩性。

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