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Double-quantitative variable consistency dominance-based rough set approach

机译:基于双量值的可变稠度优势粗糙集方法

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摘要

Rough set model with double quantification satisfies the requirement of quantitative information in practical applications, it has better fault tolerance than probabilistic rough set model considering only relative quantification and graded rough set model considering only absolute quantification. In this paper, two kinds of consistency levels are introduced from the perspective of double quantification in an ordered information system, namely relative quantitative consistency level and absolute quantitative consistency level. The single-quantitative variable consistency dominance-based rough set models based on these two kinds of quantitative consistency levels and their basic properties with the relevant three-way decision rules are discussed respectively in an ordered information system. Moreover, two kinds of double-quantitative variable consistency dominance-based rough set models and their basic properties with the relevant decision rules based on these two kinds of quantitative consistency levels are introduced. A consistency analysis of decision making in a practical case study is used to illustrate and interpret the double-quantitative variable consistency rough set models and the related decision rules in the ordered information system. The obvious shortcomings of dominance-based rough set approach (DRSA) without quantitative information are compared to explain the advantages of the quantitative variable consistency dominance-based rough sets with the two consistency levels in the practical case study. (C) 2020 Elsevier Inc. All rights reserved.
机译:具有双量程的粗糙集模型满足实际应用中定量信息的要求,考虑到仅考虑绝对量化的相对量化和分级粗糙集模型,它具有比概率粗糙集模型更好的容错。在本文中,从有序信息系统中的双量化的角度引入了两种一致性水平,即相对定量的一致性水平和绝对定量的一致性水平。基于这两种定量一致性水平的基于单量值的可变一致性优势的粗糙集模型及其具有相关三向决策规则的基本属性在有序信息系统中讨论。此外,引入了两种双量值可变稠度优势粗糙集模型及其基于基于这两种定量一致性水平的相关决策规则的基本性质。在实际案例研究中的决策中的一致性分析用于说明和解释有序信息系统中的双量值可变一致性粗糙集模型和相关决策规则。比较了基于优势的粗糙集方法(DRSA)的明显缺点,而不含定量信息,以解释基于定量的可变符合优势优势的粗糙集,其在实际案例研究中具有两个一致性水平。 (c)2020 Elsevier Inc.保留所有权利。

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