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Grey Decision Rules for Interval MADA based on Rough Set Theory

机译:基于粗糙集理论的区间MADA灰色决策规则

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摘要

Based on rough set theory, a new decision rule for information system with interval numbers is proposed.First the interval values are discretized through an improved rough clustering algorithm.Then the redundant set of attributes is obtained by constituting homogenous matrix.Then, after a part of decision rules have been generated, we propose grey decision rules that are useful in inducing rules after referring to preference-classified data tables based on grey relational analysis.To obtain weights of attribute, the reciprocal matrix which can avoid the influence of subjective factors, is constituted according to the definition of relative significance between two attributes, and then an optimal model connected with the reciprocal matrix is solved by genetic algorithm.Through contrastive analysis with back propagation (BP) neural network on stapling training planes, it is shown that the grey decision rules are more efficient than BP neural network.
机译:基于粗糙集理论,提出了一种新的区间数信息系统决策规则,首先通过改进的粗糙聚类算法对区间值进行离散化处理,再通过构造齐次矩阵得到冗余的属性集,然后进行求和在生成决策规则的基础上,提出了灰色决策规则,在基于灰色关联分析参考偏好分类的数据表后,可用于归纳规则。为获得属性权重,可使用可逆矩阵避免主观因素的影响,根据定义的两个属性之间的相对重要性定义,然后用遗传算法求解与倒数矩阵相关的最优模型。通过在装订训练平面上用BP神经网络进行对比分析,表明灰色决策规则比BP神经网络更有效。

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