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Adaptive fuzzy neural control of mean arterial pressure through sodium nitroprusside infusion

机译:硝普钠输注对平均动脉压的自适应模糊神经控制

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摘要

This paper presents an adaptive modeling and control scheme for drug delivery systems based on a generalized fuzzy neural network (G-FNN). The proposed G-FNN is a novel intelligent modeling tool, which can model the unknown nonlinearities of complex drug delivery systems and adapt on line to changes and uncertainties in these systems. It offers salient features, such as dynamic fuzzy neural topology, fast online learning ability and adaptability, etc. System approximation formulated by the G-FNN is thus employed in the adaptive controller design for drug infusion. In particular, this paper investigates the automated regulation of mean arterial pressure (MAP) through the intravenous infusion of sodium nitroprusside (SNP), which is atypical application in automation of drug delivery. Simulation study demonstrates the ability of the proposed approach for estimating the drug's effect and regulating blood pressure at a prescribed level.
机译:本文提出了一种基于广义模糊神经网络(G-FNN)的药物输送系统自适应建模与控制方案。提出的G-FNN是一种新颖的智能建模工具,它可以对复杂的药物输送系统的未知非线性进行建模,并在线适应这些系统中的变化和不确定性。它具有显着的功能,例如动态模糊神经拓扑,快速的在线学习能力和适应性等。因此,由G-FNN制定的系统逼近可用于药物输注的自适应控制器设计。特别是,本文研究了通过静脉输注硝普钠(SNP)来自动调节平均动脉压(MAP),这在药物输送自动化中是非典型应用。仿真研究证明了所提出的方法能够估计药物的作用并将血压控制在规定水平上。

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