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COMBINING DIFFERENT INFERENCE METHODS FOR MEDICAL DECISION SUPPORT SYSTEMS

机译:医疗决策支持系统的不同推理方法的组合

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In this study, synthetic data with 100, 1000 and 2000 records have been produced to reflect the probabilities on the ALARM network. In this study, a medical diagnosis system called as DRCAD is presented. DRCAD system is more innovative and interesting than the classical diagnosis support systems. In other words, DRCAD collects possible diagnosis of the patients from two sub modules. Each of these two sub modules gives the possible diagnosis from symptoms in a specific confidence degree. The proposal of two sub modules are combined linearly and diagnosis decisions are presented as a list. Each of the sub modules consist of Bayesian inference and rule-based inference models respectively. As a result, the methods in which the conclusions are combined in a linear manner are 5% more successful than the "Rule Based Method" when applied individually and 30% more successful than the cases where the "Bayesian Network Based Method" is utilized.
机译:在这项研究中,已生成具有100、1000和2000条记录的综合数据,以反映ALARM网络上的概率。在这项研究中,提出了一种称为DRCAD的医学诊断系统。与传统的诊断支持系统相比,DRCAD系统更具创新性和趣味性。换句话说,DRCAD从两个子模块中收集了可能的患者诊断信息。这两个子模块中的每一个都可以根据特定的置信度从症状中进行诊断。两个子模块的建议线性组合,诊断决策以列表形式显示。每个子模块分别由贝叶斯推理和基于规则的推理模型组成。结果,将结果以线性方式组合的方法与单独使用“基于规则的方法”相比,成功率高出5%,而与使用“基于贝叶斯网络的方法”的情况相比,成功率高出30%。

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