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The Personalized Traditional Medicine Recommendation System Using Ontology and Rule Inference Approach

机译:基于本体和规则推理的个性化传统医学推荐系统

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The purpose of this research was to solve the complication associated with the recommendation of traditional herbal medicines, concerning the fact that an appropriate use of traditional herbal medicines entails contemplation of personal health information that include age, body temperature, pregnancy, lactation, chronic diseases, and medicines taken on a regular basis. Likewise, some traditional herbal medicines cannot be taken by patients with certain health conditions. Accordingly, this research proposed a system that provides recommendations of traditional herbal medicines according to each patient's health information by applying an ontology-based knowledge representation technique that employs Web Ontology Language (OWL) to process and describe data in the ontology. Rules were expressed in the form of a rule language so as to enable the computer to infer and provide recommendations of traditional herbal medicines and their contraindications in a similar manner to a medical specialist. To test the efficiency of the proposed system in solving the complication and providing personalized recommendations, an experiment was conducted based on three scenarios: (1) the case of more than one diseases with different personal health information; (2) the case of more than one diseases with specified personal health information; and (3) the case of same disease with different personal health information. Upon assessment of the system efficiency by a medical specialist, the system was found to be capable of providing personalized recommendations of traditional herbal medicines and their contraindications in an efficient manner.
机译:这项研究的目的是解决与推荐传统草药有关的并发症,涉及到以下事实:合理使用传统草药需要考虑个人健康信息,包括年龄,体温,怀孕,泌乳,慢性疾病,并定期服用药物。同样,某些传统健康状况的患者也不能服用某些传统草药。因此,本研究提出了一种系统,该系统通过应用基于本体的知识表示技术来根据每个患者的健康信息提供传统草药的推荐,该知识表示技术采用Web本体语言(OWL)来处理和描述本体中的数据。规则以规则语言的形式表达,以使计算机能够以类似于医学专家的方式推断并提供传统草药及其禁忌症的建议。为了测试所提出系统在解决并发症和提供个性化建议方面的效率,基于以下三种情况进行了实验:(1)多种疾病的情况下具有不同的个人健康信息; (二)具有指定个人健康信息的一种以上疾病的; (三)同一疾病,个人健康信息不同的。通过医学专家对系统效率的评估,发现该系统能够以有效的方式提供传统草药及其禁忌症的个性化推荐。

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