A Two-Phase Model Based on SVM and Conjoint Analysis for Credit Scoring

نویسندگان

  • Kin Keung Lai
  • Ligang Zhou
  • Lean Yu
چکیده

In this study, we use least square support vector machines (LSSVM) to construct a credit scoring model and introduce conjoint analysis technique to analyze the relative importance of each input feature for making the decision in the model. A test based on a real-world credit dataset shows that the proposed model has good classification accuracy and can help explain the decision. Hence, it is an alternative model for credit scoring tasks.

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تاریخ انتشار 2007