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Recent Study on the Application of Hybrid Rough Set and Soft Set Theories in Decision Analysis Process

机译:最近关于杂交粗糙集和软设理论在决策分析过程中的应用研究

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Many approaches and methods have been proposed and applied in decision analysis process. One of the most popular approaches that has always been investigated is parameterization method. This method helps decision makers to simplify a complex data set. The purpose of this study was to highlight the roles and the implementations of hybrid rough set and soft set theories in decision-making especially in parameter reduction process. Rough set and soft set theories are the two powerful mathematical tools that have been successfully proven by many research works as a good parameterization method. Both of the theories have the capability of handling data uncertainties and data complexity problems. Recent studies have also shown that both rough set and soft set theories can be integrated together in solving different problems by producing a variety of algorithms and formulations. However, most of the existing works only did the performance validity test with a small volume of data set. In order to prove the hypothesis, which is the hybridization of rough set and soft set theories could help to produce a good result in the classification process, a new alternative to hybrid parameterization method is proposed as the outcome of this study. The results showed that the proposed method managed to achieve significant performance in solving the classification problem compared to other existing hybrid parameter reduction methods.
机译:已经提出了许多方法和方法,并应用于决策分析过程中。始终被调查的最流行的方法之一是参数化方法。此方法有助于决策者简化复杂的数据集。本研究的目的是突出混合粗糙集和软设理论的角色和实施,特别是在参数减少过程中。粗糙集和软设置理论是许多研究成功证明的两个强大的数学工具,作为一个很好的参数化方法。两者的理论都具有处理数据不确定性和数据复杂性问题的能力。最近的研究还表明,通过产生各种算法和制剂,可以集成粗糙集和软置理论,可以集成在一起解决不同的问题。但是,大多数现有的作品只有具有少量数据集的性能有效性测试。为了证明这是粗糙集和软设理论的杂交可以有助于在分类过程中产生良好的结果,提出了一种新的替代混合参数化方法作为本研究的结果。结果表明,与其他现有的混合参数减少方法相比,所提出的方法在解决分类问题时实现了显着性能。

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