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Machine Learning for Critical Care: An Overview and a Sepsis Case Study

机译:重症护理机器学习:概述和脓毒症案例研究

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Biology in general and medicine and healthcare in particular are facing the critical challenge of exponentially increasing data availability. The core of this challenge is putting these data to work through computer-based knowledge extraction methods. In the medical context this could take the form of medical decision support systems for diagnosis, prognosis or general management. Arguably, one of the most data dependent clinical environments is the critical care unit and by extension the whole area of critical care. Fresh approaches to data analysis in critical care are required, and Computational Intelligence and Machine Learning methods have already shown their usefulness in tackling problems in the area. This brief paper aims to be an introduction to the use of such methods in critical care.
机译:生物学,尤其是医学和医疗保健领域,正面临着数据可用性呈指数级增长的严峻挑战。这项挑战的核心是通过基于计算机的知识提取方法来使这些数据发挥作用。在医学方面,这可以采取用于诊断,预后或一般管理的医学决策支持系统的形式。可以说,最依赖数据的临床环境之一是重症监护病房,进而扩展了重症监护的整个领域。需要在重症监护中采用新的数据分析方法,并且计算智能和机器学习方法已经显示出它们在解决该地区问题中的有用性。这篇简短的文章旨在介绍在重症监护中使用此类方法的情况。

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