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Incomplete neighbourhood multi-granulation decision-theoretic rough set in the hybrid-valued decision system

机译:在混合值决策系统中不完整的邻域多颗粒决策 - 理论粗糙集

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摘要

It is an important subject to mine valuable knowledge from complex and massive data in the era of big data. Rough set theory is a new mathematical tool for dealing with uncertain and inaccurate data, decision-theoretic rough set model (DTRS), as an extension of classical rough set model, is used to analyze decision information systems and multi-granulation decision-theoretic rough set model (MG-DTRS) can analyze and process target concepts from different angles and levels. However, the classical DTRS model exists some limitations in dealing numerical or hybrid-valued data. Considering the different influence of numerical features and symbolic features on decision-making, the paper proposes an incomplete neighborhood multi-granulation decision-theoretic rough set model in hybrid-valued decision system through integrating MG-DTRS with neighbourhood rough sets, and two types of neighborhood multi-granulation decision-theoretic set models are emphatically analysed. Furthermore, taking pessimistic and optimistic neighborhood multi-granulation decision-theoretic rough sets as examples, the implementation algorithms and related properties of the two type of models are studied. Finally, the relationship between the proposed model and other models is analyzed through formula derivation. The model proposed in this paper can effectively solve the decision-making problem of hybrid-valued incomplete information system through multi-angle and multi-level analysis.
机译:这是一种重要的主题,可以在大数据时代的复杂和大规模数据中挖掘有价值的知识。粗糙集理论是用于处理不确定和不准确的数据的新数学工具,决策 - 理论粗糙集模型(DTRS),作为经典粗糙集模型的扩展,用于分析决策信息系统和多颗粒决策理论粗糙设置模型(MG-DTRS)可以分析和处理来自不同角度和级别的目标概念。但是,古典DTRS模型存在在处理数字或混合值数据的一些限制。考虑到数值特征和符号特征在决策中的不同影响,本文通过将MG-DTR与邻域粗糙集集成的MG-DTR以及两种类型的方式提出了一种在混合值决策系统中的不完整的邻域多颗粒决策 - 理论粗糙集模型。重点分析了邻域多颗粒决策定理集模型。此外,采用悲观和乐观的邻域多粒状决策 - 理论粗糙集作为示例,研究了两种模型的实现算法和相关性质。最后,通过公式推导分析所提出的模型和其他模型之间的关系。本文提出的模型可以通过多角度和多级分析有效地解决了混合值不完全信息系统的决策问题。

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