JOURNAL ARTICLE

Customer churn predictive modeling by classification methods

Oleksandr DorokhovLiudmyla DorokhovaLyudmyla МаlyaretsIryna Ushakova

Year: 2020 Journal:   Bulletin of the Transilvania University of Brasov Series III Mathematics and Computer Science Vol: 13(62) (1)Pages: 347-362

Abstract

The article describes methods of construction of predictive models for classifying customers based on their churn from the company for the example of a mobile operator. There are roles and tasks of customer analytics for understanding the business behavior of customers. The speci city of customer churn for companies associated with a subscription and transactional business model, involving regular customer payments is discussed, and the main reasons for churn are shown. Particular attention is paid to the analysis of forecasting methods based on classi cation methods. Here we discuss the forecast models based on the decision tree method and the Bayesian network. The decision tree method is basing on the C5.0 algorithm. The Bayesian model is constructed for a Naive and Markov structure. Customer service has become a key factor in the customer churn in all three models. A comparative analysis of the models was conducted based on indicators AUC and Gini. The decision tree model showed the best results. Moreover, the decision tree model shows the reasons why the customer can leave the company and give information for an individual approach to each customer. SPSS Modeler was used as a tool for building models.

Keywords:
Computer science Decision tree Customer intelligence Predictive analytics Customer relationship management Data mining Machine learning Bayesian network Analytics Business analytics Bayesian probability Tree (set theory) Artificial intelligence Service (business) Customer retention Business model Service quality Marketing Business Database Electronic business Mathematics

Metrics

4
Cited By
0.59
FWCI (Field Weighted Citation Impact)
4
Refs
0.75
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Customer churn and segmentation
Social Sciences →  Business, Management and Accounting →  Marketing
Consumer Retail Behavior Studies
Social Sciences →  Business, Management and Accounting →  Marketing
Consumer Market Behavior and Pricing
Social Sciences →  Business, Management and Accounting →  Marketing

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