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A fuzzy expert system for response determining diagnosis and management movement impairments syndrome

机译:响应确定诊断和管理运动障碍综合征的模糊专家系统

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摘要

Diagnosis is a very important aspect of medical care. Expert systems are developed to make the skills of specialists available for non-specialists. These systems simulate human thinking and performance and approach the performance of expert systems to the performance of a human expert. The purpose of this study is to develop a frizzy expert system for diagnosis and treatment of musculoskeletal disorders in elbow and shoulder. A fuzzy Delphi method is used to gather data related to symptoms and treatments. By knowledge acquisition, an expert system is developed. Components of the proposed system consist of a knowledge base, fuzzy inference engine, working memory, user interface and knowledge acquisition utilities. The developed system is able to diagnose 18 disorders of the elbow and the shoulder. To compare systemic diagnosis and expert diagnosis, SPSS software is used for statistical analysis. Because 26 out of 30 patients had a systemic diagnosis similar to the expert diagnosis, it can be concluded that 86.7% of systemic diagnoses are similar to expert diagnosis. In the absence of experts, this intelligent application can provide reliable diagnosis and treatment. Application of intelligent and semi-intelligent systems such as expert systems can aid the users to make decisions.
机译:诊断是医疗的一个非常重要的方面。开发了专家系统,以使非专业人员可以使用专家的技能。这些系统模拟人类的思维和表现,并使专家系统的表现接近人类专家的表现。这项研究的目的是开发一种用于诊断和治疗肘部和肩膀肌肉骨骼疾病的卷曲专家系统。模糊德尔菲方法用于收集与症状和治疗有关的数据。通过知识获取,开发了专家系统。该系统的组成部分包括一个知识库,模糊推理引擎,工作记忆,用户界面和知识获取工具。开发的系统能够诊断18种肘部和肩膀疾病。为了比较系统性诊断和专家诊断,使用SPSS软件进行统计分析。由于30名患者中有26名具有与专家诊断相似的系统诊断,因此可以得出结论:86.7%的系统诊断与专家诊断相似。在没有专家的情况下,这种智能应用程序可以提供可靠的诊断和治疗。智能和半智能系统(例如专家系统)的应用可以帮助用户做出决策。

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