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Attribute Reduction of Incomplete Information Systems: An Intuitionistic Fuzzy Rough Set Approach

机译:不完整信息系统的属性减少:一种直觉模糊粗糙集方法

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Nowadays, fast expansion of data processing tools leads to increase in databases in terms of objects as well as attributes in different fields like image processing, pattern recognition and risk prediction in management. Attribute reduction is a process of selecting those attributes that are mutually sufficient and individually necessary for retaining basic property of the given information system. In this paper, we introduce a novel approach for attribute reduction of an incomplete information system based on intuitionistic fuzzy rough set theory. We define an intuitionistic fuzzy tolerance relation between two objects and calculate rough approximations of an incomplete information space by using tolerance classes of each object. The degree of dependency method is used for calculating reduct set of an incomplete information system in order to handle noise and irrelevant data. An algorithm is presented for better understanding of the proposed approach and is applied to an incomplete information system. Finally, we compare proposed approach with an existing approach for attribute reduction of an incomplete information system through an example.
机译:如今,数据处理工具的快速扩展导致对象的数据库增加以及不同领域的属性,如图像处理,模式识别和管理中的风险预测。属性缩减是选择彼此的那些属性的过程,用于保留给定信息系统的基本属性。在本文中,我们介绍了基于直觉模糊粗糙集理论的不完全信息系统的属性降低的新方法。我们通过使用每个对象的公差类来定义两个对象之间的直觉模糊公差关系,并通过使用每个对象的公差类来计算不完整信息空间的粗略近似。依赖性方法的程度用于计算不完整信息系统的还原集,以处理噪声和无关数据。提出了一种算法,以便更好地理解所提出的方法,并应用于不完整的信息系统。最后,我们通过示例比较了具有现有方法的提出方法,以便通过一个例子减少不完整的信息系统。

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