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European Online Journal of Natural and Social Sciences

Finding rules for audit opinions prediction through data mining methods

Seyed Mojtaba Saif, Mehdi Sarikhani, Fahime Ebrahimi

Abstract


Nowadays data mining, which is used in various accounting and financial applications, has received a great deal of attention. One of these applications is predicting and identifying the audit opinion type. The objective of research is to help auditors identify audit opinions by using a support vector machine from data mining methods. The system receives the data from financial reports and identifies the type of audit opinions. This approach combine support vector machine with a decision tree that can understand and interpret the obtained results. In this paper, a novel approach for rule extraction from support vector machine and decision tree is presented and its application is shown in the prediction of audit opinions. The research result is 30 rules that predict the audit opinions.

Keywords


Audit opinions, data mining, support vector machine, artificial neural networks, decision tree.

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