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Iterative Learning Control of a Left Ventricular Assist Device: Nonlinear Model Integration

机译:左心室辅助设备的迭代学习控制:非线性模型集成

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摘要

Norm-optimal iterative learning control algorithms use plant models to predict the system behavior. In this paper, we focus on improving the performance in the norm-optimal iterative learning control of left ventricular assist devices. For this purpose, the previously used simple plant model is replaced by a piecewise linearized version of a nonlinear cardiovascular system model including the left ventricular assist device. Simulations are carried out to study the controller response to end-diastolic volume setpoint and preload changes. The results show minor improvements regarding the tracking performance and the rejection of disturbances but also an increase of computational effort compared to the previous algorithm.
机译:常态 - 最佳迭代学习控制算法使用工厂模型来预测系统行为。在本文中,我们专注于提高左心室辅助装置的常态最优迭代学习控制中的性能。为此目的,先前使用的简单工厂模型由包括左心室辅助装置的非线性心血管系统模型的分段线性化版本代替。进行仿真以研究控制器响应终止舒张卷卷设定点和预加载变化。结果表明,与先前算法相比,对跟踪性能和拒绝扰动的微小改进,但也增加了计算工作的增加。

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