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Evolutionary rule decision using similarity based associative chronic disease patients

机译:使用基于相似性的关联性慢性病患者的进化规则决策

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Efficient healthcare management has increasingly drawn much attention in healthcare sector along with recent advances in IT convergence technology. Population aging and a shift from an acute to a chronic disease with a long duration of illness have urgently necessitated healthcare service for efficient, systematic health management. Clinical decision support system (CDSS) is an integrated healthcare system that effectively guides health management and promotion, recommendation for regular health check-up, tailor-made diet therapy, health behavior change for self-care, alert service for drug interaction in patients with chronic diseases with a high prevalence. Although CDSS rule-based algorithm aids guidelines and decision making according to a single chronic disease, it is unable to inform unique characteristics of each chronic disease and suggest preventive strategies and guidelines of complex diseases. Therefore, this study proposes evolutionary rule decision making using similarity based associative chronic disease patients to normalize clinical conditions by utilizing information of each patient and recommend guidelines corresponding detailed conditions in CDSS rule-based inference. Decision making guidelines of chronic disease patients could be systematically established according to various environmental conditions using database of patients with different chronic diseases.
机译:随着IT融合技术的最新发展,高效的医疗保健管理越来越引起医疗保健领域的关注。人口老龄化以及从疾病转移到病程长的急性疾病向慢性病的转变,迫切需要为有效,系统的健康管理提供医疗服务。临床决策支持系统(CDSS)是一个集成的医疗保健系统,可有效指导健康管理和促进,定期健康检查建议,量身定做的饮食疗法,健康行为改变以进行自我护理,为患有以下疾病的患者提供药物相互作用的警报服务慢性病高发。尽管基于CDSS规则的算法有助于根据一种慢性病进行指导和决策,但它无法告知每种慢性病的独特特征,也无法提出复杂疾病的预防策略和指导。因此,本研究提出了一种基于相似性的关联性慢性病患者的进化规则决策方法,以通过利用每位患者的信息来使临床状况正常化,并在基于CDSS规则的推理中推荐与详细情况相对应的指南。可以使用各种慢性病患者数据库根据各种环境条件系统地建立慢性病患者的决策指南。

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