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首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >A Novel Approach of Rough Conditional Entropy-Based Attribute Selection for Incomplete Decision System
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A Novel Approach of Rough Conditional Entropy-Based Attribute Selection for Incomplete Decision System

机译:基于粗糙的条件熵的属性选择对不完整决策系统的新方法

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Pawlak's classical rough set theory has been applied in analyzing ordinary information systems and decision systems. However, few studies have been carried out on the attribute selection problem in incomplete decision systems because of its complexity. It is therefore necessary to investigate effective algorithms to deal with this issue. In this paper, a new rough conditional entropy-based uncertainty measure is introduced to evaluate the significance of subsets of attributes in incomplete decision systems. Furthermore, some important properties of rough conditional entropy are derived and three attribute selection approaches are constructed, including an exhaustive search strategy approach, a heuristic search strategy approach, and a probabilistic search strategy approach for incomplete decision systems. Moreover, several experiments on real-life incomplete data sets are conducted to assess the efficiency of the proposed approaches. The final experimental results indicate that two of these approaches can give satisfying performances in the process of attribute selection in incomplete decision systems.
机译:Pawlak的经典粗糙集理论已应用于分析普通信息系统和决策系统。然而,由于其复杂性,在不完全决策系统中的属性选择问题上已经进行了很少的研究。因此,有必要调查有效的算法来处理这个问题。本文介绍了一种基于粗糙的条件熵的不确定性度量,以评估不完全决策系统中属性子集的重要性。此外,推导出粗糙条件熵的一些重要特性,并且构建了三种属性选择方法,包括详尽的搜索策略方法,启发式搜索策略方法以及用于不完整决策系统的概率搜索策略方法。此外,进行了几个关于现实生活不完整数据集的实验,以评估所提出的方法的效率。最终的实验结果表明,这些方法中的两种方法可以在不完整决策系统中的属性选择过程中提供满意的性能。

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