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A clarifying analysis of feedback error learning in an LTI framework

机译:LTI框架中反馈错误学习的清晰分析

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Feedback error learning (FEL) is a proposed technique for reference-feedforward adaptive control. FEL in a linear and time-invariant (LTI) framework has been studied recently; the studies can be seen as proposed solutions to a 'feedforward MRAC problem. This paper reanalyzes two suggested schemes with new interpretations and conclusions. It motivates the suggestion of an alternative scheme for reference-feedforward adaptive control, based on a certainty-equivalence approach. The suggested scheme differs from the analyzed ones by a slight change in both the estimator and the control law. Boundedness and error convergence are then guaranteed when the estimator uses normalization combined with parameter projection onto a convex set where stability of the estimated closed-loop system holds. Copyright ?2008 John Wiley & Sons, Ltd.
机译:反馈误差学习(FEL)是一种用于参考前馈自适应控制的提议技术。最近研究了线性和时不变(LTI)框架中的FEL。这些研究可视为“前馈MRAC问题”的建议解决方案。本文用新的解释和结论重新分析了两个建议的方案。它激发了基于确定性等价方法的参考前馈自适应控制的替代方案的建议。所建议的方案与被分析的方案有所不同,因为估算器和控制律都略有变化。当估计器将归一化与参数投影结合到凸集上时,保证了有界和误差收敛,凸集上估计的闭环系统的稳定性得以保持。版权所有?2008 John Wiley&Sons,Ltd.

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