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基于聚类-粗糙集-神经网络的企业财务危机预警

鲍新中 杨宜

系统管理学报2013,Vol.22Issue(3):358-365,8.
系统管理学报2013,Vol.22Issue(3):358-365,8.

基于聚类-粗糙集-神经网络的企业财务危机预警

Early Warning of Financial Distress Using Clustering-Rough Sets-Neural Networks

鲍新中 1杨宜2

作者信息

  • 1. 北京联合大学管理学院,北京100025
  • 2. 北京联合大学商务学院,北京100028
  • 折叠

摘要

Abstract

Financial crisis warning of listed companies is always an important concern of stakeholders.Due to the data availability,reseachers typically divide companies into two classes as ST and non-ST.Besides,past research pay less attention to the indicator selection,subjective judgement may be the main way for this issue.This paper aims to ovecome the two limitations about finacial situation level and indicator selection.Rough set theory is used to set up a complete and simple indicator system,while hierarchical clustering analysis is used to classify the financial status into five levels,namely health,relative health,medium.Medium,slight warning and serious warning.This changes traditional classification scheme with only ST and non-ST classes.A neural network model is built using the reduced indicator system as the input and the five financial status levels as the output.The model is more accurate in predicting the financial distress status because of more reasonable neural network structure design.

关键词

粗糙集/神经网络/层次聚类分析/财务危机预警

Key words

rough set/neural network/hierarchical clustering analysis/financial distress warning

分类

管理科学

引用本文复制引用

鲍新中,杨宜..基于聚类-粗糙集-神经网络的企业财务危机预警[J].系统管理学报,2013,22(3):358-365,8.

系统管理学报

OACSSCICSTPCD

2097-4558

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