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Predictive Model to Determine Customer Desertion in Peruvian Banking Entities

  • Universidad Peruana de Ciencias Aplicadas

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

In this paper, a predictive model to determine customer desertion in Peruvian banking entities is proposed. The purpose of the model is the early identification of customers that reflect a behavior tending towards desertion based on financial movements, transactions, product acquisition, etc. The model is based on the analysis of a customer dataset to identify common traits through the use of SAP Predictive Analytics, and then comparing these traits to a different customer dataset, identifying those that are more likely to leave the entity. The commercial use of this model is the immediate application of loyalty initiatives that would enable the entity to retain the customer. The model was tested in order to identify the most efficient and precise one, being the R-K Means algorithm the best performing one, with a 93.20% accuracy and a better false positive/negative relation (8 and 3 respectively).

Original languageEnglish
Title of host publication2018 Congreso Internacional de Innovacion y Tendencias en Ingenieria, CONIITI 2018 - Proceedings
EditorsCarlos Andres Lozano-Garzon
PublisherInstitute of Electrical and Electronics Engineers Inc.
ISBN (Electronic)9781538681312
DOIs
StatePublished - 21 Dec 2018
Event4th Innovation and Trends in Engineering Congress, CONIITI 2018 - Bogota, Colombia
Duration: 3 Oct 20185 Oct 2018

Publication series

Name2018 Congreso Internacional de Innovacion y Tendencias en Ingenieria, CONIITI 2018 - Proceedings

Conference

Conference4th Innovation and Trends in Engineering Congress, CONIITI 2018
Country/TerritoryColombia
CityBogota
Period3/10/185/10/18

Keywords

  • Auto Classification Algorithm
  • Customer Desertion
  • Machine Learning
  • Predictive Analytics
  • Predictive Model

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