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Using Domain Knowledge to Improve Intelligent Decision Support in Intensive Medicine A Study of Bacteriological Infections

机译:利用领域知识来改善密集药物智能决策支持的研究

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Nowadays antibiotic prescription is object of study in many countries. The rate of prescription varies from country to country, without being found the reasons that justify those variations. In intensive care units the number of new infections rising each day is caused by multiple factors like inpatient length of stay, low defences of the body, chirurgical infections, among others. In order to complement the support of the decision process about which should be the most efficient antibiotic it was developed a heuristic based in domain knowledge extracted from biomedical experts. This algorithm is implemented by intelligent agents. When an alert appear on the presence of a new infection, an agent collects the microbiological results for cultures, it permits to identify the bacteria, then using the rules it searches for a role of antibiotics that can be administered to the patient, based on past results. At the end the agent presents to physicians the top-five sets and the success percentage of each antibiotic. This paper presents the approach proposed and a test with a particular bacterium using real data provided by an Intensive Care Unit.
机译:如今抗生素处方是许多国家的研究对象。处方率因国家而异,没有被发现证明这些变化的原因。在重症监护病单位,每天上升的新感染数量是由住院患者的持续长度,身体低的防御,手表感染等多种因素引起的。为了补充决策过程的支持,这应该是最有效的抗生素,它开发了一种基于生物医学专家提取的域名知识的启发式。该算法由智能代理实现。当警觉出现在存在新感染时,药剂收集培养物的微生物效果,允许鉴定细菌,然后使用其搜索的规则基于过去可以施用于患者的抗生素的作用。结果。在最后,代理商向医生提出前五件套和每种抗生素的成功百分比。本文介绍了采用密集护理单元提供的真实数据的特定细菌的方法和试验。

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