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Dual Adaptive Model Predictive Control with Disturbances

机译:双自适应模型预测控制与扰动

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Model-based control requires good accuracy of model parameters to achieve high performance. Controller design under parametric uncertainties is therefore a challenging topic in control system engineering. One well known control design for uncertain systems is adaptive control. An adaptive controller has two tasks: process regulation and parameter learning. Dual control explores the trade-off between the two seemingly conflicting tasks. The control structure in an adaptive system consists of a model-based controller and a recursive update rule for parameter estimation. In this paper, the adaptive control framework consists of model predictive control for system regulation and recursive least squares for parameter estimation. The requirement for persistent excitation is shown to be necessary for systems with high-dimensional parameter space. Then, a dual formulation is proposed in an attempt to generate excitation signals while maintaining control performance in the adaptive control scheme. The algorithm is implemented and tested on a simulated SISO system.
机译:基于模型的控制需要良好的模型参数精度来实现高性能。因此,参数不确定因素下的控制器设计是控制系统工程中有挑战性的话题。一个众所周知的不确定系统的控制设计是自适应控制。自适应控制器有两个任务:过程调节和参数学习。双重控制探讨了两个看似矛盾的任务之间的权衡。自适应系统中的控制结构包括基于模型的控制器和参数估计的递归更新规则。在本文中,自适应控制框架包括用于系统调节和递归最小二乘的模型预测控制,用于参数估计。显示具有高维参数空间的系统所需的对持久激励的要求。然后,提出了一种尝试在适应控制方案中保持控制性能的同时产生激励信号的双重制定。在模拟的SISO系统上实现和测试该算法。

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