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Discernibility matrix simplification with new attribute dependency functions for incomplete information systems

机译:用于不完整信息系统的具有新属性依赖功能的可区分性矩阵简化

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摘要

Recently, many researches have been done on attribute dependency degree models. In this work, we bring forward three attribute dependency functions for incomplete information systems and investigate their basic properties in detail. Afterward, we apply the proposed models to twelve data sets from the UCI repository of machine learning databases. Finally, using the proposed functions, we perform the discernibility matrix simplification of incomplete information systems. The experimental results show that our proposed functions are more flexible to calculate the degree of each conditional attribute related to the decision attribute for incomplete information systems.
机译:近年来,关于属性依赖度模型的研究很多。在这项工作中,我们提出了不完整信息系统的三个属性依赖函数,并详细研究了它们的基本属性。之后,我们将提出的模型应用于来自UCI机器学习数据库的12个数据集。最后,使用提出的功能,我们对不完整的信息系统进行了可区分性矩阵的简化。实验结果表明,对于不完备的信息系统,我们提出的函数可以更灵活地计算与决策属性相关的每个条件属性的程度。

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