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Neural network adaptive dynamic output feedback control for nonlinear nonnegative systems using tapped delay memory units

机译:非线性非负系统的神经网络自适应动态输出反馈控制,使用分接式延迟存储单元

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The potential applications of neural adaptive control for pharmacology in general, and anesthesia and critical care unit medicine in particular, are clearly apparent. Specifically, monitoring and controlling the depth of anesthesia in surgery is of particular importance. Nonnegative and compartmental models provide a broad framework for biological and physiological systems, including clinical pharmacology, and are well suited for developing models for closed-loop control of drug administration. In this paper, we develop a neural adaptive output feedback control framework for nonlinear uncertain nonnegative and compartmental systems. The proposed framework is Lyapunov-based and guarantees ultimate boundedness of the error signals. In addition, the neural adaptive controller guarantees that the physical system states remain in the nonnegative orthant of the state space. Finally, the proposed approach is used to control the infusion of the anesthetic drug propofol for maintaining a desired constant level of depth of anesthesia for noncardiac surgery.
机译:通常,神经适应性控制在药理学方面尤其是在麻醉学和重症监护病房药物方面的潜在应用是显而易见的。特别地,在手术中监测和控制麻醉深度特别重要。非阴性和区室模型为包括临床药理学在内的生物和生理系统提供了广泛的框架,非常适合开发用于药物给药的闭环控制的模型。在本文中,我们为非线性不确定的非负和隔室系统开发了一种神经自适应输出反馈控制框架。所提出的框架是基于Lyapunov的,并保证了误差信号的最终有界性。此外,神经自适应控制器可确保物理系统状态保留在状态空间的非负正态中。最后,所提出的方法用于控制麻醉药异丙酚的输注,以维持非心脏手术所需的恒定麻醉深度水平。

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