A machine learning approach for banks classification and forecast

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Date

2019-04

Authors

Fontalvo Herrera, Tomas
De La Hoz Dominguez, Enrique

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Abstract

n this research, a classification model is developed for the banking sector using the machine earning technique GLMNET. In the first place, a clustering process was developed, where 3 clearly differentiated groups were found. Subsequently, a Fuzzy analysis was performed finding the probabilities of transition of the banks to each group found, finally, the GLMNET algorithm was implemented, the automatic classification of the banks according to their financial items, obtaining a result of 95% accuracy. © 2019 International Business Information Management Association (IBIMA).

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A machine learning approach for banks classification and forecast.pdf