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Indirect adaptive nonlinear control of drug delivery systems

机译:药物输送系统的间接自适应非线性控制

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This paper investigates the use of adaptive neural network techniques for modeling and automatic control of mean arterial pressure through the intravenous infusion of sodium nitroprusside. An indirect model reference-based adaptive nonlinear control scheme with neural networks approximating the unknown nonlinearities, is developed. In this formulation nonlinear estimators are used to adaptively approximate the system uncertainty and augment the linear control law for improved performance. The overall design is based on self-tuning the controller to the specific response characteristics of individual patients. Computer simulations illustrate the ability of radial basis function networks to model the unknown nonlinearities and improve the closed-loop system characteristics.
机译:本文研究了通过自适应输注硝普钠钠对自适应神经网络技术进行平均动脉压建模和自动控制的方法。提出了一种基于间接模型参考的自适应非线性控制方案,其中神经网络逼近了未知的非线性。在此公式中,非线性估计器用于自适应地估计系统不确定性并增强线性控制律以提高性能。总体设计基于对控制器进行自我调整以适应个别患者的具体反应特征。计算机仿真说明了径向基函数网络建模未知非线性和改善闭环系统特性的能力。

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