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Probabilities, dependence and rough membership functions

机译:概率,依赖性和粗隶属函数

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The goal of this research is to study the reflection of probability theories through rough membership functions in rough sets. Towards this, philosophy and variants of probability theories and their theorized connections with rough memberships functions are critically analyzed. The concept of rough membership functions and rough dependence are also generalized to granular operator spaces, characterized and used for the same purpose in more general contexts. A new theory of dependence based deviant probability is developed as a severe extension of the axiomatic approach to a dependence-based probability introduced recently by the present author. This permits clearer comparison of the concept with those of rough dependence. It is shown that the theories are very distinct semantically and similarities are poorly justified. These are relevant for rethinking the various probabilistic rough theories and related methodologies. The problem of contamination reduction was proposed recently across many papers by the present author. In this study, the scope of the problem within rough membership functions, probabilistic rough sets (PSTs) and three-way decision-making is also clarified by her. A new definition of artificial intelligence applicable in rough perspectives is also proposed on the basis of recent advances in algebraic semantics related to rough membership functions.
机译:这项研究的目的是通过粗糙集的粗糙隶属度函数研究概率论的反映。为此,对概率论的哲学和变体及其与粗糙隶属函数的理论联系进行了批判性分析。粗糙隶属度函数和粗糙依赖关系的概念也被推广到粒度运算符空间,在更一般的上下文中对其进行表征并用于相同的目的。发展了一种基于依存的越轨概率的新理论,作为公理方法对本作者最近提出的基于依存的概率的严格扩展。这样可以使概念与粗糙依赖的概念进行更清晰的比较。结果表明,这些理论在语义上非常不同,相似性的依据也很差。这些与重新考虑各种概率粗略理论和相关方法有关。当前作者最近在许多论文中提出了减少污染的问题。在这项研究中,她还阐明了粗糙隶属函数,概率粗糙集(PST)和三向决策中的问题范围。在与粗糙隶属度函数有关的代数语义学的最新进展的基础上,还提出了适用于粗糙观点的人工智能的新定义。

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