JOURNAL ARTICLE

Prediction of bankruptcy using support vector machines: an application to bank bankruptcy

Birsen Eygi Erdoğan

Year: 2012 Journal:   Journal of Statistical Computation and Simulation Vol: 83 (8)Pages: 1543-1555   Publisher: Taylor & Francis

Abstract

The purpose of this study was to apply support vector machines (SVMs) to bank bankruptcy analysis using practical steps. Although the prediction of the financial distress of companies is done using several statistical and machine learning techniques, bank classification and bankruptcy prediction still need to be investigated because few investigations have been conducted in this field of banking. In this study, SVMs were implemented to analyse financial ratios. Data sets from Turkish commercial banks were used. This study shows that SVMs with the Gaussian kernel are capable of extracting useful information from financial data and can be used as part of an early warning system.

Keywords:
Support vector machine Bankruptcy Bankruptcy prediction Financial distress Machine learning Artificial intelligence Turkish Field (mathematics) Financial ratio Statistical learning theory Computer science Data mining Mathematics Finance Business Financial system

Metrics

83
Cited By
3.97
FWCI (Field Weighted Citation Impact)
18
Refs
0.95
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Financial Distress and Bankruptcy Prediction
Social Sciences →  Business, Management and Accounting →  Accounting
Imbalanced Data Classification Techniques
Physical Sciences →  Computer Science →  Artificial Intelligence
Stock Market Forecasting Methods
Social Sciences →  Decision Sciences →  Management Science and Operations Research

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