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Applications of classification trees to consumer credit scoring methods in commercial banks

机译:分类树在商业银行消费者信用评分方法中的应用

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Based on the theory of classification trees, the samples that are taken out from one commercial bank of China are put into classification tree models. When comparing results of models, it is considered that the model size, the structure of the sample and error cost could influence model's error rates. The optimized classification tree model is produced out based on the comparisons. It is concluded that classification trees are more suitable than logistic regression for present domestic credit scoring because of characters of the samples, through comparing classification trees and logistic regression.
机译:基于分类树理论,将从中国一家商业银行中提取的样本放入分类树模型中。比较模型结果时,认为模型大小,样本结构和错误成本可能会影响模型的错误率。根据比较结果,得出优化的分类树模型。通过比较分类树和逻辑回归,可以得出结论:由于样本的特点,分类树比逻辑回归更适合目前的国内信用评分。

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