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Development of a Knowledge-based Clinical Decision Support System for Multiple Sclerosis Diagnosis

机译:发展基于知识的临床决策支持系统用于多发性硬化诊断

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摘要

The diagnosis of multiple sclerosis (MS) is difficult considering its complexity, variety in signs and symptoms, and its similarity to the signs and symptoms of other neurological diseases. The purpose of this study is to design and develop a clinical decision support system (CDSS) to help physicians diagnose MS with a relapsing-remitting phenotype. The CDSS software was developed in four stages: requirement analysis, system design, system development, and system evaluation. The Rational Rose and SQL Server were used to design the object-oriented conceptual model and develop the database. The C sharp programming language and the Visual Studio programming environment were used to develop the software. To evaluate the efficiency and applicability of the software, the data of 130 medical records of patients aged 20 to 40 between 2017 and 2019 were used along with the Nilsson standard questionnaire. SPSS Statistics was also used to analyze the data. For MS diagnosis, CDSS had a sensitivity, specificity and accuracy of 1, 0.97 and 0.99, respectively, and the area under the ROC curve was 0.98. The agreement rate of kappa coefficient (κ) between software diagnosis and physician’s diagnosis was 0.98. The average score of software users was 98.33%, 96.65%, and 96.9% regarding the ease of learning, memorability, and satisfaction, respectively. Therefore, the applicability of the CDSS for MS diagnosis was confirmed by the neurologists. The evaluation findings show that CDSS can help physicians in the accurate and timely diagnosis of MS by using the rule-based method.
机译:多发性硬化症(MS)的诊断难以考虑其复杂性,品种在症状和症状中,以及其与其他神经疾病的迹象和症状的相似性。本研究的目的是设计和开发临床决策支持系统(CDS),以帮助医生诊断MS与复发延续的表型。 CDSS软件是在四个阶段开发的:要求分析,系统设计,系统开发和系统评估。 Rational Rose和SQL Server用于设计面向对象的概念模型并开发数据库。 C Sharp编程语言和Visual Studio编程环境用于开发软件。为了评估软件的效率和适用性,2017年至2019年期间为20至40岁的患者的130名病程数据以及尼尔森标准问卷。 SPSS统计数据也用于分析数据。对于MS诊断,CDSS分别具有1,0.97和0.99的灵敏度,特异性和准确度,ROC曲线下的区域为0.98。软件诊断与医生诊断之间的Kappa系数(κ)的协议率为0.98。关于易于学习,令人难忘性和满意度,软件用户的平均分数分别为98.33%,96.65%和96.9%。因此,神经病学家证实了CDS对MS诊断的适用性。评估结果表明,CDSS可以通过使用基于规则的方法帮助医生在准确和及时诊断MS中。

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