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Intelligent optimization models for disease diagnosis using a service-oriented architecture and management science

机译:智能优化模型使用面向服务的架构和管理科学进行疾病诊断

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The accuracy of disease diagnosis remains a significant challenge that medical and health care industries experience due to a relative lack of misdiagnosis studies and a difficulty of retrieving patients' information. Validation of diagnosis and certainty of its accuracy is the goal of this research. The research, as reported in this paper introduces an innovative solution to determine the accuracy of disease diagnosis. The solution is based on Intelligent Optimization Models (IOM) using integration of Service-Oriented Architecture (SOA) and Management Science (MS). These models enable medical doctors to make inference about disease diagnosis and allow a quick diagnosis of diseases at higher level of accuracy. The models also have the advantage of reducing health risk associated with experimenting with real patients. In particular, bad decisions that cause death or wrong treatment can be avoided. About 44,000 to 98,000 Americans die annually as the result of medical errors. Experimenting with these models requires less time and is less expensive than experimenting with studying patient's condition. In a SOA environment, the study of this research develops new intelligent concepts. These concepts integrate approaches of management science models including linear programming and network, search methodologies, information retrieval, clustering extended genetic algorithm, and intelligent agents. A prototype is created and examined in order to validate the concepts. The proposed concepts strengthen the capacity and quality of STEM undergraduate degree programs. The concepts also promote a vigorous STEM academic environment to increase the number of students entering STEM careers.
机译:疾病诊断的准确性仍然是医疗和医疗保健行业由于相对缺陷的误诊研究以及检索患者信息的难度而产生的重大挑战。验证诊断和确定性的准确性是本研究的目标。本文报道的研究介绍了一种创新的解决方案,以确定疾病诊断的准确性。该解决方案基于智能优化模型(IOM),使用面向服务的架构(SOA)和管理科学(MS)的集成。这些模型使医生能够对疾病诊断进行推断,并在更高的准确度下进行快速诊断疾病。该模型还具有降低与实验与实验相关的健康风险的优势。特别是,可以避免导致死亡或错误治疗的不良决定。由于医疗错误,每年约44,000到98,000名美国人死亡。使用这些模型进行实验需要更少的时间并且比研究患者的病情实验更便宜。在SOA环境中,这项研究的研究开发了新的智能概念。这些概念集成了管理科学模型的方法,包括线性规划和网络,搜索方法,信息检索,聚类扩展遗传算法和智能代理。创建和检查原型以验证概念。拟议的概念加强了茎本科学位课程的能力和质量。该概念还促进了一个充满活力的茎学术环境,以增加进入词干职业生涯的学生人数。

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