Intravenous Drug Delivery System for Blood Pressure Patient Based on Adaptive Parameter Estimation

Bharat Singh, S. Urooj
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引用次数: 2

Abstract

Controlled drug delivery systems (DDS's) is an electromechanical system that supports the injection of a therapeutic drug intravenously into a patient's body and easily controls the infusion rate of patient's drug, blood pressure, and time of drug release. The controlled operation of mean arterial blood pressure (MABP) and cardiac output (CO) is highly desired in clinical operations. Different methods have been proposed for controlling MABP, all methods have certain disadvantages according to patient model. In this article, the authors propose blood pressure control using integral reinforcement learning based fuzzy inference systems (IRLFI) based on parameter estimation techniques and have compared this method in terms of integral squared error (ISE), integral absolute error (IAE), integral time-weighed absolute error (ITAE), root mean square error (RMSE), convergence time (CT).
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基于自适应参数估计的血压患者静脉给药系统
受控给药系统(DDS’s)是一种支持治疗药物静脉注射到患者体内并易于控制患者药物的输注速度、血压和药物释放时间的机电系统。控制平均动脉压(MABP)和心输出量(CO)在临床手术中是非常需要的。针对MABP的控制提出了不同的方法,根据不同的患者模型,每种方法都有一定的缺点。在本文中,作者提出了使用基于参数估计技术的基于积分强化学习的模糊推理系统(IRLFI)进行血压控制,并在积分平方误差(ISE)、积分绝对误差(IAE)、积分时间加权绝对误差(ITAE)、均方根误差(RMSE)、收敛时间(CT)方面对该方法进行了比较。
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