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Categorized and Integrated Data Mining of Medical Data from the Viewpoint of Chance Discovery

机译:从机会发现的角度对医学数据进行分类和集成的数据挖掘

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In this paper, we analyze the procedure of computational medical diagnosis based on collected medical data. Especially, we focus on features or factors which interfere with sufficient medical diagnoses. In order to reduce the data complexity, we introduce medical data categorization. Data are categorized into six categories to be analyzed and to generate rule sets for medical diagnosis. We analyze the relationships among categorized data sets within the context of chance discovery, where hidden or potential relationships lead to improved medical diagnosis. We then suggest the possibility of integrating rule sets derived from categorized data for improving the accuracy of medical diagnosis.
机译:在本文中,我们基于收集的医学数据分析了计算医学诊断的过程。尤其是,我们重点关注会干扰足够的医学诊断的特征或因素。为了降低数据复杂性,我们引入了医学数据分类。数据分为六类,以进行分析并生成用于医学诊断的规则集。我们在机会发现的上下文中分析分类的数据集之间的关系,其中隐藏的或潜在的关系可以改善医学诊断。然后,我们提出了整合来自分类数据的规则集以提高医学诊断准确性的可能性。

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