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An Efficient Technique for Feature Selection to Predict Customer Churn in telecom industry

机译:一种有效的特征选择技术来预测电信行业的客户流失

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The evolution of technology has a great impact on the telecom industry, which has grown rapidly from telegraph to present high speed network. This rapid growth has resulted in the establishment of many telecom sectors which in turn has given rise to a stiff competition among them. Telecom sectors with improved technology needs to handle the large set of subscribed customer base. Now a days, in addition to acquisition of new customers to increase the company revenue, retaining the old customers is also found to be of much importance. So, all the telecom industries are concentrating on building a best predictive model in order to determine the churn rate. In this paper we mainly concentrate on refining the telecom dataset by applying the Pre-processing, feature selection and feature extraction techniques. The refined dataset is created to provide the prediction accuracy similar to or greater than the original dataset with less computation.
机译:技术的发展对电信行业产生了巨大的影响,电信行业已经从电报迅速发展到现在的高速网络。这种快速的增长导致建立了许多电信行业,从而引起了它们之间的激烈竞争。技术水平不断提高的电信行业需要处理大量的订阅客户群。如今,除了收购新客户以增加公司收入外,留住老客户也被认为非常重要。因此,所有电信行业都在致力于建立最佳的预测模型,以确定客户流失率。在本文中,我们主要集中于通过应用预处理,特征选择和特征提取技术来完善电信数据集。创建精炼的数据集以提供与原始数据集相似或更高的预测精度,并且计算量更少。

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