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MINIMIZING THE WORST-CASE ν-GAP BY OPTIMAL INPUT DESIGN

机译:通过最佳输入设计最小化最坏情况的ν间隙

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Parameter identification experiments deliver an identified model together with an ellipsoidal uncertainty region in parameter space. The objective of robust controller design is thus to stabilize all plants in the identified uncertainty region. We design an identification experiment such that the worst-case ν-gap over all plants in the resulting uncertainty region between the identified plant and plants in this region is as small as possible. The experiment design is performed via input power spectrum optimization. Two cost functions are investigated, which represent different levels of trade-off between accuracy and computational complexity. It is shown that the input optimization problem with respect to these cost functions is amenable to standard numerical algorithms used in convex analysis.
机译:参数识别实验将鉴定的模型与参数空间中的椭圆形不确定性区域一起递送。因此,鲁棒控制器设计的目的是稳定所识别的不确定性区域中的所有植物。我们设计一种识别实验,使得在该区域中所识别的植物和植物之间所产生的不确定性区域中所有植物的最坏情况的ν间隙尽可能小。通过输入功率谱优化进行实验设计。调查了两项成本函数,在准确性和计算复杂性之间表示不同的权衡级别。结果表明,关于这些成本函数的输入优化问题可用于凸分析中使用的标准数值算法。

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