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Finding an LFT uncertainty model with minimal uncertainty

机译:寻找具有最小不确定性的LFT不确定性模型

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In this paper, we present a procedure for finding the best LFT uncertainty model by minimizing the ℌ -infinity norm of the uncertainty set with respect to a nominal model subject to known input-output data. The main problem is how to express the data-matching constraints for convenient use in the optimization problem. For some uncertainty structures, they can readily be formulated as a set of linear matrix inequalities (LMIs), for some other structures, LMIs are obtained after certain transformations. There are also cases, when the constraints result in bilinear matrix inequalities (BMIs), which can be linearized to enable an efficient iterative solution. Essentially all LFT uncertainty structures are considered. An application to distillation modeling is included.
机译:在本文中,我们提出了一种程序,该程序通过将不确定集合的不确定性的ℌ-无穷范数最小化来找到最佳的LFT不确定性模型,相对于已知输入输出数据的标称模型。主要问题是如何表达数据匹配约束,以便在优化问题中方便使用。对于某些不确定性结构,可以将它们容易地公式化为一组线性矩阵不等式(LMI),对于其他一些结构,则可以在进行某些转换后获得LMI。在某些情况下,当约束导致双线性矩阵不等式(BMI)时,可以将其线性化以实现有效的迭代解。基本上所有LFT不确定性结构都被考虑了。包括对蒸馏建模的应用。

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