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A Rule Acquisition Method Based on Rough Set Theory and Genetic Algorithm

机译:基于粗糙集理论和遗传算法的规则获取方法

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It is an objective fact that large database has inconsistent data. This paper presents a new rule acquisition method based on rough set theory and genetic algorithm. Using rough set theory, we will divide inconsistent data table into two parts, certain data and possible data, and then standard genetic algorithm is used for mining rules set. When the algorithm is processing, the user is allowed to set three evaluation parameter values of the rules: support, confidence, coverage for specific application needs. This algorithm will delete the rules which do not meet the requirements, so we can reduce the amount of data in the case of massive data. The advantage of this setting is obvious. Finally, we use an case to verify this method.
机译:客观事实是大型数据库的数据不一致。本文提出了一种基于粗糙集理论和遗传算法的规则获取新方法。利用粗糙集理论,将不一致的数据表分为一定的数据和可能的数据两部分,然后使用标准的遗传算法进行规则集的挖掘。在处理算法时,允许用户设置规则的三个评估参数值:支持,置信度,特定应用程序需求的覆盖率。该算法将删除不符合要求的规则,因此在海量数据的情况下,我们可以减少数据量。此设置的优点是显而易见的。最后,我们用一个案例来验证这种方法。

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