Negative Correlation Learning for Customer Churn Prediction: A Comparison Study

Author:

Rodan Ali1ORCID,Fayyoumi Ayham2ORCID,Faris Hossam1,Alsakran Jamal1ORCID,Al-Kadi Omar1ORCID

Affiliation:

1. King Abdulla II School for Information Technology, The University of Jordan, Amman 11942, Jordan

2. College of Computer and Information Sciences, Al Imam Mohammad Ibn Saud Islamic University, Riyadh 11432, Saudi Arabia

Abstract

Recently, telecommunication companies have been paying more attention toward the problem of identification of customer churn behavior. In business, it is well known for service providers that attracting new customers is much more expensive than retaining existing ones. Therefore, adopting accurate models that are able to predict customer churn can effectively help in customer retention campaigns and maximizing the profit. In this paper we will utilize an ensemble of Multilayer perceptrons (MLP) whose training is obtained using negative correlation learning (NCL) for predicting customer churn in a telecommunication company. Experiments results confirm that NCL based MLP ensemble can achieve better generalization performance (high churn rate) compared with ensemble of MLP without NCL (flat ensemble) and other common data mining techniques used for churn analysis.

Publisher

Hindawi Limited

Subject

General Environmental Science,General Biochemistry, Genetics and Molecular Biology,General Medicine

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