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Design and Demonstration of a Complex Neonatal Physiological Model for Testing of Novel Closed-Loop Inspired Oxygen Fraction Controllers

机译:一种用于测试新型闭环启发氧气分数控制器的复杂新生儿生理学模型的设计与演示

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Recently published clinical trials document that manual control of oxygen fraction in the inspiratory gas in neonates is not prompt enough to react to the rapidly changing physiological status of a neonate.As a result,the arterial blood oxygen saturation exhibits significantly long periods when the actual oxygen saturation level goes outside the desired safe range.Simple closed-loop systems are able to optimize the inspiratory oxygen fraction in steady-state situations,but they do not perform well in the context of rapidly changing physiological parameters.As a consequence,new algorithms for the closed-loop control of the inspired oxygen fraction are being developed and are becoming available.The aim of our study was to create a physiologically-realistic model of a neonatal organism allowing more extensive bench testing of newly developed algorithms for oxygen control in neonates.The design of the model is based both on the theoretical and up-to-date knowledge of the physiological principles,as well as on the well-documented observations by the authors in the neonatal intensive care units.The simulated outputs of the model correlate well with the real situations observed in the clinical environment.
机译:最近公布的临床试验文件,即在新生儿的吸气气体中手动控制氧气级分没有足够的提示,以对新生儿的快速变化的生理状态作出反应。结果,当实际氧气时,动脉血氧饱和度明显长时间饱和水平超出所需的安全范围。闭环系统能够优化稳态情况下的吸气氧气分数,但在快速改变生理参数时它们不会良好地表现良好。因此,新算法开发灵感氧气分数的闭环控制正在开发并成为可用的。我们的研究目的是创造一种新生儿生物体的生理学 - 现实模型,允许对新生儿的新开发的氧气控制进行更广泛的算法测试。该模型的设计是基于生理普林的理论和最新知识在新生儿重症监护单位中作者以及作者的良好记录的观察。模型的模拟输出与临床环境中观察到的真实情况相比良好。

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