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Identification for control of multivariable systems: Controller validation and experiment design via LMIs

机译:识别多变量系统的控制:通过LMI进行控制器验证和实验设计

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摘要

This paper presents a new controller validation method for linear multivariable time-invariant models. Classical prediction error system identification methods deliver uncertainty regions which are nonstandard in the robust control literature. Our controller validation criterion computes an upper bound for the worst case performance, measured in terms of the H{sub}∞-norm of a weighted closed loop transfer matrix, achieved by a given controller over all plants in such uncertainty sets. This upper bound on the worst case performance is computed via an LMI-based optimization problem and is deduced via the separation of graph framework. Our main technical contribution is to derive, within that framework, a very general parametrization for the set of multipliers corresponding to the nonstandard uncertainty regions resulting from PE identification of MIMO systems. The proposed approach also allows for iterative experiment design. The results of this paper are asymptotic in the data length and it is assumed that the model structure is flexible enough to capture the true system.
机译:本文提出了一种针对线性多变量时不变模型的新型控制器验证方法。经典的预测误差系统识别方法提供的不确定性区域在鲁棒控制文献中是非标准的。我们的控制器验证标准计算最坏情况性能的上限,该上限根据给定控制器在此类不确定性集中的所有工厂实现的加权闭环传递矩阵的H {sub}∞-范数来衡量。最坏情况下的性能上限是通过基于LMI的优化问题来计算的,并且是通过图形框架的分离得出的。我们的主要技术贡献是在该框架内为与由MIMO系统的PE识别产生的非标准不确定性区域相对应的乘法器集进行非常通用的参数化。所提出的方法还允许迭代实验设计。本文的结果在数据长度上是渐近的,并且假定模型结构足够灵活以捕获真实的系统。

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