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Application of AI in Credit Scoring Modeling

Produktform: Buch / Einband - flex.(Paperback)

The scope of this study is to investigate the capability of AI methods to accurately detect and predict credit risks based on retail borrowers' features. The comparison of logistic regression, decision tree, and random forest showed that machine learning methods are able to predict credit defaults of individuals more accurately than the logit model. Furthermore, it was demonstrated how random forest and decision tree models were more sensitive in detecting default borrowers.weiterlesen

Dieser Artikel gehört zu den folgenden Serien

Sprache(n): Englisch

ISBN: 978-3-658-40179-5 / 978-3658401795 / 9783658401795

Verlag: Springer Fachmedien Wiesbaden GmbH

Erscheinungsdatum: 08.12.2022

Seiten: 83

Auflage: 1

Autor(en): Bohdan Popovych

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