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DEVELOPMENT OF A CRITICALLY ILL PATIENT INPUT-OUTPUT MODEL

机译:开发批判性患者输入输出模型

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In this paper we apply system identification in order to build a model suitable for prediction of the glycemia levels of critically ill patients in the Intensive Care Unit. These patients typically show increased glycemia levels, and it has been shown that glycemia control by means of insulin therapy reduces morbidity and mortality. Based on a real-life dataset from 41 critically ill patients, an ARX model is estimated which captures the insulin effect on glycemia under different settings. The results are satisfactory both in terms of forecasting ability and in the clinical interpretation of the estimated coefficients.
机译:在本文中,我们应用系统识别,以便构建适合于预测重症监护单元中患者患者的血糖水平的模型。这些患者通常显示出血糖水平的增加,并且已经证明通过胰岛素治疗的糖血症控制可降低发病率和死亡率。基于41危重患者的真实数据集,估计了ARX模型,其在不同环境下捕获了对糖血症的胰岛素效应。结果在预测能力和估计系数的临床解释方面都是令人满意的。

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