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- W4231518508 abstract "In this work a Multi-Objective Evolutionary Algorithm (MOEA) was applied for feature selection in the problem of bankruptcy prediction. This algorithm maximizes the accuracy of the classifier while keeping the number of features low. A two-objective problem, that is minimization of the number of features and accuracy maximization, was fully analyzed using the Logistic Regression (LR) and Support Vector Machines (SVM) classifiers. Simultaneously, the parameters required by both classifiers were also optimized, and the validity of the methodology proposed was tested using a database containing financial statements of 1200 medium sized private French companies. Based on extensive tests, it is shown that MOEA is an efficient feature selection approach. Best results were obtained when both the accuracy and the classifiers parameters are optimized. The proposed method can provide useful information for decision makers in characterizing the financial health of a company." @default.
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- W4231518508 date "2012-01-01" @default.
- W4231518508 modified "2023-10-16" @default.
- W4231518508 title "Feature Selection for Bankruptcy Prediction" @default.
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- W4231518508 doi "https://doi.org/10.4018/978-1-4666-1574-8.ch009" @default.
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