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Derivation and selection of norm-bounded uncertainty descriptions based on multiple models

机译:基于多种模型的范数不确定性描述的推导和选择

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摘要

A method for determining a norm-bounded unstructured uncertainty description from a set of linear models is presented. The method yields multiple-input, multiple-output shaping filters which are suitable for H-infinity-based analysis or controller synthesis. The method can be applied to so-called model matching, where uncertainty descriptions are obtained from a set of linear models. Another approach is to use so-called output matching, which utilises outputs of the models in the set. First, necessary and sufficient conditions for uncertainty shaping filters to capture a multimodel set are given. Then, an approach for non-conservative filter design by optimizing a closed-loop criterion is proposed. It is highlighted by a design example, where additive, input-multiplicative and output-multiplicative uncertainty models are compared. The example illustrates the impact of the choice of uncertainty model and the structure of the shaping filter on the resulting conservatism caused by the uncertainty description. [References: 25]
机译:提出了一种用于从一组线性模型确定范数界的非结构化不确定性描述的方法。该方法产生适用于基于H-无穷大的分析或控制器综合的多输入,多输出整形滤波器。该方法可以应用于所谓的模型匹配,其中不确定性描述是从一组线性模型中获得的。另一种方法是使用所谓的输出匹配,它利用集合中模型的输出。首先,给出了不确定性整形滤波器捕获多模型集的必要和充分条件。然后,提出了一种通过优化闭环准则进行非保守滤波器设计的方法。一个设计示例突出了该示例,在其中比较了加性模型,输入乘性模型和输出乘性不确定性模型。该示例说明了不确定性模型的选择和成形滤波器的结构对不确定性描述所导致的所得保守性的影响。 [参考:25]

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