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Consistency measure, inclusion degree and fuzzy measure in decision tables

机译:决策表中的一致性测度,包含度和模糊测度

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摘要

Classical consistency degree has some limitations for measuring the consistency of a decision table, in which the lower approximation of a target decision is only taken into consideration. In this paper, we focus on how to measure the consistencies of a target concept and a decision table and the fuzziness of a rough set and a rough decision in rough set theory. For three types of decision tables (complete, incomplete and maximal consistent blocks), the membership functions of an object are defined through using the equivalence class, tolerance class and maximal consistent blocks including itself, respectively. Based on these membership functions, we introduce consistency measures to assess the consistencies of a target set and a decision table, and define fuzziness measures to compute the fuzziness of a rough set and a rough decision in these three types of decision tables. In addition, the relationships among the consistency, inclusion degree and fuzzy measure are established as well. These results will be helpful for understanding the essence of the uncertainty in decision tables and can be applied for rule extraction and rough classification in practical decision issues.
机译:经典一致性程度对于测量决策表的一致性有一些限制,其中仅考虑目标决策的较低近似值。在本文中,我们集中于如何度量目标概念和决策表的一致性以及粗糙集理论中粗糙集和粗糙决策的模糊性。对于三种类型的决策表(完整,不完整和最大一致性块),分别通过使用等价类,公差类和最大一致性块(包括其自身)来定义对象的隶属函数。基于这些隶属函数,我们引入一致性度量以评估目标集和决策表的一致性,并定义模糊性度量以计算这三种类型的决策表中粗糙集和粗糙决策的模糊性。此外,还建立了一致性,包含度和模糊测度之间的关系。这些结果将有助于理解决策表中不确定性的本质,并可用于实际决策问题中的规则提取和粗分类。

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