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企业信用评估指标体系及信用评估模型研究
引用本文:朱菁婕,吴怀岗. 企业信用评估指标体系及信用评估模型研究[J]. 南京师范大学学报, 2020, 0(3): 081-86. DOI: 10.3969/j.issn.1672-1292.2020.03.013
作者姓名:朱菁婕  吴怀岗
作者单位:南京师范大学计算机科学与技术学院,江苏 南京210023;南京师范大学计算机科学与技术学院,江苏 南京210023
摘    要:针对企业的信用评估,基于已有研究,引入企业财务指标和非财务指标,使用机器学习分类方法构建信用评估模型,并对几种方法的分类准确率进行了比较分析. 实验结果表明,该信用评估指标体系可行,随机森林方法在该指标体系上的分类效果最好. 同时,优化了分类效果较差的多层感知器,提升了分类准确率.

关 键 词:企业信用评估  信用指标体系  信用评估模型

Research on the Index System and EvaluationModel of Enterprise Credit Evaluation
Zhu Jingjie,Wu Huaigang. Research on the Index System and EvaluationModel of Enterprise Credit Evaluation[J]. Journal of Nanjing Nor Univ: Eng and Technol, 2020, 0(3): 081-86. DOI: 10.3969/j.issn.1672-1292.2020.03.013
Authors:Zhu Jingjie  Wu Huaigang
Affiliation:School of Computer Science and Technology,Nanjing Normal University,Nanjing 210023,China
Abstract:As for enterprise credit evaluation,this paper introduces financial indexes and non-financial indexes based on previous research. Machine learning classification methods are used to build credit evaluation models,and the classification accuracy rates of several methods are compared and analyzed. The experimental results show that the credit evaluation index system is feasible,and that the random forest method has the best classification effect on the index system. At the same time, the multi-layer perceptron with poor classification effect is optimized,and the classification accuracy is improved.
Keywords:enterprise credit evaluation  credit index system  credit evaluation model
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