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An ontology-based fuzzy decision support system for multiple sclerosis

机译:基于本体的多发性硬化症模糊决策支持系统

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The use of Magnetic Resonance (MR) as a supporting tool in the diagnosis and monitoring of multiple sclerosis (MS) and in the assessment of treatment effects requires the accurate determination of cerebral white matter lesion (WML) volumes. In order to automatically support neuroradiologists in the classification of WMLs, an ontology-based fuzzy decision support system (DSS) has been devised and implemented. The DSS encodes high-level, specialized medical knowledge in terms of ontologies and fuzzy rules and applies this knowledge in conjunction with a fuzzy inference engine to classify WMLs and to obtain a measure of their volumes. The performance of the DSS has been quantitatively evaluated on 120 patients affected by MS. Specifically, binary classification results have been first obtained by applying thresholds on fuzzy outputs and then evaluated, by means of ROC curves, in terms of trade-off between sensitivity and specificity. Similarity measures of WMLs have been also computed for a further quantitative analysis. Moreover, a statistical analysis has been carried out for appraising the DSS influence on the diagnostic tasks of physicians. The evaluation has shown that the DSS offers an innovative and valuable way to perform automated WML classification in real clinical settings.
机译:在多发性硬化症(MS)的诊断和监测以及治疗效果评估中使用磁共振(MR)作为辅助工具需要准确确定脑白质病变(WML)量。为了自动支持神经放射科医生对WML进行分类,已经设计并实施了基于本体的模糊决策支持系统(DSS)。 DSS根据本体论和模糊规则对高级专业医学知识进行编码,并将此知识与模糊推理引擎一起应用以对WML进行分类并获得其量度。已对120例受MS影响的患者进行了DSS表现的定量评估。具体而言,首先通过在模糊输出上应用阈值来获得二元分类结果,然后通过ROC曲线根据敏感性和特异性之间的权衡进行评估。 WML的相似性度量也已经计算出来,用于进一步的定量分析。此外,已经进行了统计分析以评估DSS对医师诊断任务的影响。评估表明,DSS提供了一种创新且有价值的方法,可以在实际临床环境中执行自动WML分类。

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