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A Measure of Inconsistency for Simple Decision Systems over Ontological Graphs

机译:基于本体图的简单决策系统的不一致性度量

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Rough sets are an appropriate tool to deal with rough (ambiguous, imprecise) concepts in the universe of discourse. A general idea of rough sets is to approximate a given set of objects of interest by other sets of objects, called elementary sets, forming basic knowledge granules. Approximation can be either exact or rough. In the paper, we show that adding information on semantic relations between decision attribute values in a form of an ontological graph enables us to make a quantitative assessment of basic knowledge granules approximating a given set of objects. We focus on semantic relations fundamental in linguistics, called paradigmatic semantic relations. Based on approximation, the whole universe of objects can be divided into three disjoint regions, the positive region, the negative region, and the boundary region. The assessment measure has a fuzzy character, i.e., 0 for granules included in the negative region, 1 for granules included in the positive region, and between 0 and 1 for granules included in the boundary region. It is a measure of inconsistencies existing in simple decision systems over ontological graphs.
机译:粗集是处理话语领域中的粗略(模棱两可,不精确)概念的合适工具。粗糙集的一般思想是用其他称为基本集的对象集来近似给定的感兴趣对象集,从而形成基本知识颗粒。近似可以是精确的也可以是粗糙的。在本文中,我们表明以本体论图的形式添加有关决策属性值之间的语义关系的信息,使我们能够对近似给定对象集的基础知识颗粒进行定量评估。我们关注语言学中最基本的语义关系,称为范式语义关系。基于近似,物体的整个宇宙可以分为三个不相交的区域,正区域,负区域和边界区域。评估措施具有模糊特征,即,对于包括在负区域中的颗粒为0,对于在正区域中包括的颗粒为1,并且对于在边界区域中包括的颗粒为0与1之间。它衡量简单决策系统中本体图上存在的不一致性。

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