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Expositing stages of VPRS analysis in an expert system: Application with bank credit ratings

机译:专家系统中VPRS分析的阐述阶段:具有银行信用等级的应用

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The variable precision rough sets model (VPRS) .along with many derivatives of rough set theory (RST) necessitates a number of stages towards the final classification of objects. These include, (ⅰ) the identification of subsets of condition attributes (β-reducts in VPRS) which have the same quality of classification as the whole set, (ⅱ) the construction of sets of decision rules associated with the reducts and (ⅲ) the classification of the individual objects by the decision rules. The expert system exposited here offers a decision maker (DM) the opportunity to fully view each of these stages, subsequently empowering an analyst to make choices during the analysis. Its particular innovation is the ability to visually present available β-reducts, from which the DM can make their selection, a consequence of their own reasons or expectations of the analysis undertaken. The practical analysis considered here is applied on a real world application, the credit ratings of large banks and investment companies in Europe and North America. The snapshots of the expert system presented illustrate the variation in results from the 'asymmetric' consequences of the choice of β-reducts considered.
机译:可变精度粗糙集模型(VPRS),以及粗糙集理论(RST)的许多派生,都需要经过多个阶段才能最终实现对象的分类。其中包括:(ⅰ)识别与整个集合具有相同分类质量的条件属性子集(VPRS中的β-还原),(ⅱ)构建与还原相关的决策规则集,以及(ⅲ)根据决策规则对单个对象进行分类。此处介绍的专家系统为决策者(DM)提供了全面查看每个阶段的机会,从而使分析人员能够在分析过程中做出选择。其特殊的创新之处在于能够可视地呈现可用的β还原物,DM可以根据自身原因或对所进行分析的期望从中进行选择。这里考虑的实际分析适用于实际应用,包括欧洲和北美的大型银行和投资公司的信用等级。所呈现的专家系统的快照说明了所考虑的β还原选择的“不对称”结果带来的结果差异。

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