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A dynamic attribute reduction algorithm based on 0-1 integer programming

机译:基于0-1整数规划的动态属性约简算法

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Attribute reduction is an important research concept in rough set theory. Many attribute reduction algorithms were designed for the static information system in the past years. However, many real-world data are generated dynamically. Then a new dynamic attribute reduction algorithm based on a 0-1 integer programming is proposed to deal with the dynamic data in this paper. When multiple objects in the information system evolve over time, instead of treating the changed information table as a new one and finding the reduct again like rough set reduction algorithm does, the proposed algorithm just updates the original reduct. Therefore, its computational speed improves greatly. In addition, an approach of constraint preprocessing is also presented in this paper. Numerical experiments on twelve benchmark data-sets testify the feasibility and validity of the proposed algorithm.
机译:属性约简是粗糙集理论中的重要研究概念。近年来,为静态信息系统设计了许多属性约简算法。但是,许多实际数据是动态生成的。在此基础上,提出了一种基于0-1整数规划的动态属性约简算法。当信息系统中的多个对象随时间变化时,与其将变更后的信息表视为新表并像粗集约简算法那样再次找到约简,所提出的算法只是更新原始约简。因此,其计算速度大大提高。此外,本文还提出了一种约束预处理方法。在十二个基准数据集上的数值实验证明了该算法的可行性和有效性。

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