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Algorithm Integration Behavior for Discovering Group Membership Rules

机译:发现组成员资格规则的算法集成行为

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Information exploitation processes use different data mining algorithms for obtaining knowledge patterns from data obtained on the problem domain. One of the assumptions when working with these algorithms is that the complexity of the membership domain of the cases they use does not affect the quality of the obtained results. So, it is important to analyze the behavior of the information exploitation process through the discovery of group membership rules by using clustering and induction algorithms. This research characterizes the complexity of the domains in terms of the pieces of knowledge that describe them and information exploitation processes they seek to discover. The results of the experiments show that, in the case of the process for discovering group membership rules, the quality of the patterns differs depending on the algorithms used in the process and the complexity of the domains to which they are applied.
机译:信息剥削过程使用不同的数据挖掘算法来获取来自问题域上获得的数据的知识模式。使用这些算法时的假设之一是他们使用的案例的成员领域的复杂性不会影响所获得的结果的质量。因此,通过使用聚类和归纳算法来分析信息利用过程的行为是重要的。这项研究表征了域在描述它们的知识方面的复杂性和他们寻求发现的信息剥削过程。实验结果表明,在发现组成员规则的过程的情况下,图案的质量取决于在过程中使用的算法和所应用的域的复杂性。

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