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Machine Learning Techniques for Decision Support in Anesthesia

机译:机器学习技术在麻醉中的决策支持

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The growing availability of measurement devices in the operating room enables the collection of a huge amount of data about the state of the patient and the doctors’ practice during a surgical operation. This paper explores the possibilities of generating, from these data, decision support rules in order to support the daily anesthesia procedures. In particular, we focus on machine learning techniques to design a decision support tool. The preliminary tests in a simulation setting are promising and show the role of computational intelligence techniques in extracting useful information for anesthesiologists.
机译:手术室中的测量装置不断增长的可用性使得能够在手术操作期间收集关于患者状态和医生的实践的大量数据。本文探讨了从这些数据生成决策支持规则的可能性,以支持日常麻醉程序。特别是,我们专注于机器学习技术来设计决策支持工具。仿真设定中的初步测试是有前途的,并展示计算智能技术在提取麻醉学家的有用信息方面的作用。

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