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A Subgroup Discovery Algorithm Based on Genetic Fuzzy Systems

机译:基于遗传模糊系统的子群发现算法

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Subgroup discovery algorithm is a new data mining technique, which plays an important role in the induction of large data areas. First, the basic concepts of subgroup discovery algorithm and fuzzy system are introduced. Then subgroup discovery iterative genetic algorithm (SDIGA) is studied. Genetic fuzzy system is used in traditional subgroup discovery algorithm, the way that a weighted sum of multiple objective functions is taken in fitness function. After continuous crossover genetic, the best description of the rules is obtained. Finally, the proposed method is applied to the dataset of compressive strength of concrete in UCI database, and the experiment results show the effectiveness of SDIGA subgroup discovery algorithm.
机译:子组发现算法是一种新的数据挖掘技术,它在大数据区域的归纳中起着重要作用。首先,介绍了子群发现算法和模糊系统的基本概念。然后研究了子群发现迭代遗传算法(SDIGA)。传统的子群发现算法采用遗传模糊系统,在适应度函数中采用多个目标函数的加权和。经过连续交叉遗传后,可获得对规则的最佳描述。最后,将该方法应用于UCI数据库中混凝土的抗压强度数据集,实验结果证明了SDIGA子组发现算法的有效性。

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