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A novel rule infusion technique for generating simulated binary data to validate data mining methods

机译:一种用于生成模拟二进制数据的新规则输液技术,以验证数据挖掘方法

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Mathematical analysis of existing data mining methods is not straightforward and in many cases it is not possible. Therefore, simulated data plays a central role in validation of data mining results in a given situation, i.e., noise, missing value and multicollinearity levels. This paper proposes a longitudinal binary data simulation focusing on presentation of the major challenge of infusing user-defined rules. Results of applying Apriori, PRAT, Prism, and JRip rule extraction methods on these simulated data in several missing value levels are presented in this paper. This simulation proved to be essential in verifying data mining results that we have generated on Medical Epidemiological and Social Aspects of Aging (MESA) data set.
机译:现有数据挖掘方法的数学分析并不简单,并且在许多情况下是不可能的。 因此,模拟数据在给定情况下,在数据挖掘结果的验证中播放了核心作用,即噪声,缺失值和多色性等级。 本文提出了一种纵向二进制数据仿真,其侧重于呈现注入用户定义规则的主要挑战。 本文介绍了应用APRiori,PRAT,PRISM和JRIP规则提取方法的结果,在这些纸张中呈现了这些模拟数据。 该模拟证明是在验证我们在衰老(MESA)数据集的医学流行病学和社会方面产生的数据挖掘结果至关重要。

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