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Incremental Updates of Rough Set-Based Probabilistic Rules

机译:基于粗糙集的概率规则的增量更新

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摘要

This paper proposes a new framework for rule induction methods based on rule layers constrained by inequalities of accuracy and coverage. Rule induction methods are combined with classification of elementary relations (i.e., One attribute-value pair) into four layers. The classification statistics reflects the characteristics of data and rule stabilities. The proposed method was evaluated on datasets regarding headaches and meningitis, and the results show that the proposed method not only outperforms the conventional method but also captures the characteristics of applied data.
机译:本文提出了一种基于规则层的规则归纳方法的新框架,该规则层受精度和覆盖率的不等式约束。规则归纳方法与基本关系的分类(即一对属性-值对)组合为四层。分类统计反映了数据和规则稳定性的特征。在头痛和脑膜炎的数据集上对提出的方法进行了评估,结果表明,提出的方法不仅优于常规方法,而且还捕获了应用数据的特征。

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