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Establishment of the Credit Indicator System of Micro Enterprises Based on Support Vector Machine and R-Type Clustering

机译:基于支持向量机和R型聚类的微型企业信用指标体系的建立

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摘要

The micro enterprises' credit indicators with credit identification ability are selected by the two classification models of Support Vector Machine for the first round of indicator selection and then for the second round of indicator selection, deleting credit indicators with redundant information by clustering variables through the principle of minimum sum of deviation squares. This paper provides a screening model for credit evaluation indicators of micro enterprises and uses credit data of 860 micro enterprises samples in Inner Mongolia in western China for application analysis. The test results show that, first, the constructed final micro enterprises' credit indicator system is in line with the 5C model; second, the validity test based on the ROC (Receiver Operating Characteristic) curve reveals that each of the screened credit evaluation indicators is valid.
机译:通过支持向量机的两个分类模型,选择具有信用识别能力的微型企业信用指标,进行第一轮指标选择,然后再进行第二轮指标选择,根据原理通过聚类变量删除具有冗余信息的信用指标。偏差平方和的最小和。本文提供了微企业信用评价指标的筛选模型,并利用西部地区内蒙古的860家微企业样本的信用数据进行了应用分析。测试结果表明,首先,构建的最终微型企业信用指标体系符合5C模型。其次,基于ROC(接收者工作特性)曲线的有效性测试表明,每个筛选的信用评估指标都是有效的。

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  • 来源
    《Mathematical Problems in Engineering》 |2018年第4期|6390720.1-6390720.11|共11页
  • 作者

    Li Zhanjiang; Yang Chengrong;

  • 作者单位

    Inner Mongolia Agr Univ, Coll Econ & Management, 306 Zhaowuda Rd, Hohhot, Peoples R China;

    Inner Mongolia Agr Univ, Coll Econ & Management, 306 Zhaowuda Rd, Hohhot, Peoples R China;

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