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首页> 外文期刊>Indian Journal of Science and Technology >Knowledge Abstraction from MIMIC II Using Apriori Algorithm for Clinical Decision Support System
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Knowledge Abstraction from MIMIC II Using Apriori Algorithm for Clinical Decision Support System

机译:使用Apriori算法从MIMIC II中提取知识用于临床决策支持系统

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Clinical Decision Support Systems provide physicians with a sustainable solution to treat their patients more effectively and improve the quality of care provided to them. These Systems can interpret large volumes of real-time patient data and provide doctors with a snapshot view of actionable information, ultimately allowing them to make better decisions, intervene in a timelier manner. icuARM is one of the Clinical Decision Support Systems, developed so far. This System uses MIMIC II, a publicly accessible Database created to archive records involving multimodal measurement data about ICU patients. icuARM is a tool which uses association rule mining technique that analyzes data for frequent patterns in the database. Overall, icuARM is a CDSS that assists physicians in choosing proper medication based on clinical status of patient's in real time, which will substantially improve the efficiency, accuracy and timeliness for clinical decision making in intensive care. The proposed Apriori association rule mining algorithm generates pattern to associate type of medication to the disease suffered by ICU Patients. The proposed approach decreases the probability of prolonging the patients stay in the ICU and improve their condition. The confidence score achieved in the algorithm is very effective in providing proper medication to the patients.
机译:临床决策支持系统为医生提供了一种可持续的解决方案,可以更有效地治疗患者并改善提供给他们的护理质量。这些系统可以解释大量的实时患者数据,并为医生提供可操作信息的快照视图,最终使他们能够做出更好的决定,并及时进行干预。 icuARM是迄今为止开发的临床决策支持系统之一。该系统使用MIMIC II,这是一个可公开访问的数据库,用于存储有关ICU患者多模式测量数据的记录。 icuARM是一种使用关联规则挖掘技术的工具,可以分析数据中数据库中的频繁模式。总体而言,icuARM是一种CDSS,可帮助医生根据患者的临床状况实时选择合适的药物,这将大大提高重症监护室临床决策的效率,准确性和及时性。拟议的Apriori关联规则挖掘算法生成模式,以将药物类型与ICU患者所患疾病关联。所提出的方法降低了延长患者留在ICU中并改善其状况的可能性。在算法中获得的置信度得分在为患者提供适当药物方面非常有效。

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