Comparison of Credit Scoring Models on Probability of Default Estimation for Us Banks
Petr Gurný and
Martin Gurný
Prague Economic Papers, 2013, vol. 2013, issue 2, 163-181
Abstract:
This paper is devoted to the estimation of the probability of default (PD) as a crucial parameter in risk management, requests for loans, rating estimation, pricing of credit derivatives and many others key financial fields. Particularly, in this paper we will estimate the PD of US banks by means of the statistical models, generally known as credit scoring models. First, in theoretical part, we will briefly introduce the two main categories of credit scoring models, which will be afterwards used in application part - linear discriminant analysis and regression models (logit and probit), including testing the statistical significance of estimated parameters. In the main part of the paper we will work with the sample of almost three hundred US commercial banks which will be separated into two groups (non-default and default) on the basis of historical information. Subsequently, we will stepwise apply the mentioned above scoring models on this sample to derive several models for estimation of PD. Further we will apply these models to the control sample to determine the most appropriate model.
Keywords: logistic regression; probability of default (PD); credit scoring models; linear discriminant analysis; probit regression (search for similar items in EconPapers)
JEL-codes: C51 G01 G21 (search for similar items in EconPapers)
Date: 2013
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Citations: View citations in EconPapers (11)
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DOI: 10.18267/j.pep.446
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