Automated knowledge discovery in clinical databases based on rough set model

Automated knowledge discovery in clinical databases based on rough set model

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Article ID: iaor20011106
Country: Canada
Volume: 38
Issue: 3
Start Page Number: 196
End Page Number: 207
Publication Date: Aug 2000
Journal: INFOR
Authors:
Keywords: learning, health services, datamining
Abstract:

One of the most important problems on rule induction methods is that extracted rules do not plausibly represent information on experts' decision processes, which makes rule interpretation by domain experts difficult. In order to solve this problem, the characteristics of medical reasoning are discussed. Positive and negative rules are introduced which model medical experts' rules. Then, for induction of positive and negative rules, two search algorithms are provided. The proposed rule induction method was evaluated on medical databases, the experimental results of which show that induced rules correctly represented experts' knowledge and several interesting patterns were discovered.

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