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Automated Discovery of Medical Expert System Rules from Clinical Databases based on Rough Sets

机译:基于粗糙集的临床数据库自动发现医学专家系统规则

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Automated knowledge acquisition is an important research issue to solve the bottleneck problem in developing expert systems. Although many inductive learning methods have been proposed for this purpose, most of the approaches focus only on inducing classification rules. However, medical experts also learn other information important for diagnosis from clinical cases. In this paper, a rule induction method is introduced, which extracts not only classification rules but also other medical knowledge needed for diagnosis. This system is evaluated on a clinical database of headache, whose experimental results show that our proposed method correctly induces diagnostic rules and estimates the statistical measures of rules.
机译:自动化知识获取是解决开发专家系统中的瓶颈问题的重要研究问题。尽管为此目的提出了许多归纳学习方法,但大多数方法仅关注诱导分类规则。但是,医学专家还学习其他信息诊断临床病例。在本文中,介绍了规则感应方法,不仅提取分类规则,还提取诊断所需的其他医学知识。该系统在头痛的临床数据库中进行评估,其实验结果表明我们的提出方法正确地诱导诊断规则并估计规则的统计措施。

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