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IDENTIFICATION OF TIME VARYING CARDIAC DISEASE STATE USING A MINIMAL CARDIAC MODEL WITH REFLEX ACTIONS

机译:使用具有反射动作的最小心脏模型的时间变化的心脏病状态鉴定

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A minimal cardiac model that accurately captures the essential cardio-vascular system dynamics has been developed. Standard parameter identification methods for this model are highly non-linear and non-convex, hindering clinical application, given the limited measurements available in an intensive care unit. This paper presents an integral based identification method that transforms the problem into a linear, convex problem. Five common disease states including four fundamental types of shock, are identified to within 10% without false identification. Clinically, it enables medical staff to rapidly obtain a patient specific model to assist in diagnosis and therapy selection.
机译:已经开发了一种最大的心脏模型,可以制定精确地捕获基本心动系统动态。给出了该模型的标准参数识别方法是高度线性和非凸,妨碍临床应用,鉴于密集护理单元中可用的有限测量。本文介绍了一个基于积分的识别方法,将问题转换为线性,凸面问题。五种常见疾病状态,包括四种基本类型的休克,在10%以内没有错误识别。临床上,它使医务人员能够快速获得患者特定模型,以协助诊断和治疗选择。

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