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Modeling uncertainty in computerized guidelines using fuzzy logic.

机译:使用模糊逻辑对计算机化准则中的不确定性进行建模。

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摘要

Computerized Clinical Practice Guidelines (CPGs) improve quality of care by assisting physicians in their decision making. A number of problems emerges since patients with close characteristics are given contradictory recommendations. In this article, we propose to use fuzzy logic to model uncertainty due to the use of thresholds in CPGs. A fuzzy classification procedure has been developed that provides for each message of the CPG, a strength of recommendation that rates the appropriateness of the recommendation for the patient under consideration. This work is done in the context of a CPG for the diagnosis and the management of hypertension, published in 1997 by the French agency ANAES. A population of 82 patients with mild to moderate hypertension was selected and the results of the classification system were compared to whose given by a classical decision tree. Observed agreement is 86.6% and the variability of recommendations for patients with close characteristics is reduced.
机译:电脑临床实践指南(CPG)通过协助医师做出决策来提高护理质量。由于具有密切特征的患者被给予相互矛盾的建议,因此出现了许多问题。在本文中,由于在CPG中使用阈值,我们建议使用模糊逻辑对不确定性进行建模。已经开发出一种模糊分类程序,该程序为CPG的每条消息提供提示的推荐强度,该强度对所考虑患者的推荐适当性进行评分。这项工作是在1997年由法国机构ANAES发布的用于诊断和管理高血压的CPG中完成的。选择了82例轻至中度高血压患者,并将分类系统的结果与经典决策树给出的结果进行比较。观察到的一致性为86.6%,针对具有密切特征的患者的建议变异性降低了。

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