In this paper, we use two-stage hybrid models consisting of unsupervised clustering techniques and decision trees with boasting on two different data sets and evaluate the models in terms of top decile lift. We examine two different approaches for hybridization of the models for utilizing the results of clustering based on various attributes related to service usage and revenue contribution of customers. The results indicate that the use of clustering led to improved top decile lift for the hybrid models compared to the benchmark case when no clustering is used.The Proceedings of the International MultiConference of Engineers and Computer Scientists (IMECS 2009), Hong Kong, 18 - 20 March , 2009, v. 1, p. 638-64
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Abstract: Nowadays customer churn has become the main concern of companies which are active in diffe...
In recent years, the telecom market has been very competitive. The cost of retaining existing teleco...
Churn management is one of the key issues handled by mobile telecommunication operators. Data mining...
The expenses for attracting new customers are much higher compared to the ones needed to maintain ol...
Customer churn is the focal concern of most companies which are active in industries with low swit...
For telecommunication businesses it is important to retain as many customers as possible. For this p...
For quite a long time, research studies have attempted to combine various analytical tools to build ...
Making more accurate marketing decisions by managers requires building effective predictive models. ...
As markets have become increasingly saturated, companies have acknowledged that their business strat...
Customer clustering is an unsupervised machinelearning approach that groups diverse customers based ...
Customer churn prediction is used to retain customers at the highest risk of churn by proactively en...
Customer churn is a central problem in almost every sector. Due to the diversity of the customers, p...
As markets become increasingly saturated, astute companies acknowledge that their business strategie...
Telecommunication sector generates a huge amount of data due to increasing number of subscribers, ra...
These days telecommunication sector has grown significantly due to the use of smart technologies, an...
Abstract: Nowadays customer churn has become the main concern of companies which are active in diffe...
In recent years, the telecom market has been very competitive. The cost of retaining existing teleco...
Churn management is one of the key issues handled by mobile telecommunication operators. Data mining...
The expenses for attracting new customers are much higher compared to the ones needed to maintain ol...
Customer churn is the focal concern of most companies which are active in industries with low swit...
For telecommunication businesses it is important to retain as many customers as possible. For this p...
For quite a long time, research studies have attempted to combine various analytical tools to build ...
Making more accurate marketing decisions by managers requires building effective predictive models. ...
As markets have become increasingly saturated, companies have acknowledged that their business strat...
Customer clustering is an unsupervised machinelearning approach that groups diverse customers based ...
Customer churn prediction is used to retain customers at the highest risk of churn by proactively en...
Customer churn is a central problem in almost every sector. Due to the diversity of the customers, p...
As markets become increasingly saturated, astute companies acknowledge that their business strategie...
Telecommunication sector generates a huge amount of data due to increasing number of subscribers, ra...
These days telecommunication sector has grown significantly due to the use of smart technologies, an...
Abstract: Nowadays customer churn has become the main concern of companies which are active in diffe...
In recent years, the telecom market has been very competitive. The cost of retaining existing teleco...