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Use of the C4.5 machine learning algorithm to test a clinical guideline-based decision support system

机译:使用C4.5机器学习算法测试基于临床指南的决策支持系统

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Well-designed medical decision support system (DSS) have been shown to improve health care quality. However, before they can be used in real clinical situations, these systems must be extensively tested, to ensure that they conform to the clinical guidelines (CG) on which they are based. Existing methods cannot be used for the systematic testing of all possible test cases.We describe here a new exhaustive dynamic verification method. In this method, the DSS is considered to be a black box, and the Quinlan C4.5 algorithm is used to build a decision tree from an exhaustive set of DSS input vectors and outputs. This method was successfully used for the testing of a medical DSS relating to chronic diseases: the ASTI critiquing module for type 2 diabetes.
机译:已经显示精心设计的医疗决策支持系统(DSS)以提高医疗保健品质。然而,在它们可以在真正的临床情况下使用之前,必须广泛测试这些系统,以确保它们符合其所依据的临床指南(CG)。现有方法不能用于所有可能的测试用例的系统测试。我们在这里描述了一种新的详尽动态验证方法。在该方法中,DSS被认为是黑盒子,Quinlan C4.5算法用于从一组穷举的DSS输入向量和输出构建决策树。该方法已成功用于测试与慢性疾病有关的医学DSS:2型糖尿病的ASTI批评模块。

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