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Analysis of Attribute Reduction of Incomplete Decision Table Based on Information Entropy

机译:基于信息熵的不完全决策表属性约简分析

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Attribute reduction of incomplete decision table is one of the important contents of Rough Set theory. The paper presents an attribute reduction algorithm of incomplete decision table based on information entropy, where the attribute reduction method based on information entropy is studied and analyzed. In the proposed method, the relative core of decision table is treated as the starting point. And then the concept of entropy is employed as heuristic information and conditions of reduction for seeking attribute reduction with a bottom-up approach. Finally, experimental results verify the feasibility and effectiveness of this method.
机译:不完整决策表的属性减少是粗糙集理论的重要内容之一。本文提出了一种基于信息熵的不完整决策表的属性还原算法,其中研究并分析了基于信息熵的属性还原方法。在所提出的方法中,决策表的相对核心被视为起点。然后熵的概念被雇用为启发式信息和减少条件,以便以自下而上的方式寻求属性。最后,实验结果验证了这种方法的可行性和有效性。

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