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Initializing Genetic Programming using Fuzzy Clustering and its Application in Churn Prediction in the Telecom Industry

机译:基于模糊聚类的遗传规划初始化及其在电信业客户流失预测中的应用

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Customer defection or "churn" rate is critically important since it leads to serious business loss. Therefore, many telecommunication companies and operators have increased their concern about churn management and investigated statistical and data mining based approaches which can help in identifying customer churn. In this paper, a churn prediction framework is proposed aiming at enhancing the predictability of churning customers. The framework is based on combining two heuristic approaches; Fast Fuzzy C-Means (FFCM) and Genetic Programming (GP). Considering the fact that GP suffers three different major problems: sensitivity towards outliers, variable results on various runs, and resource expensive training process, FFCM was first used to cluster the data set and exclude outliers, representing abnormal customers’ behaviors, to reduce the GP possible sensitivity towards outliers and training resources. After that, GP is applied to develop a classification tree. For the purpose of this work, a data set was provided by a major Jordanian telecommunication mobile operator.
机译:客户叛逃或“流失”率至关重要,因为它会导致严重的业务损失。因此,许多电信公司和运营商增加了对流失管理的关注,并研究了基于统计和数据挖掘的方法,这些方法可以帮助识别客户流失。本文提出了一种流失预测框架,旨在提高流失客户的可预测性。该框架基于两种启发式方法的结合。快速模糊C均值(FFCM)和遗传规划(GP)。考虑到GP遇到三个不同的主要问题:对异常值的敏感性,各种运行中的可变结果以及资源昂贵的培训过程,FFCM首先用于对数据集进行聚类并排除代表异常客户行为的异常值,以减少GP对异常值和培训资源可能的敏感性。之后,将GP应用于开发分类树。为了这项工作,约旦一家主要的电信移动运营商提供了一个数据集。

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