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Robust identification: an approach to select the class of candidate models

机译:可靠的识别:选择候选模型类别的方法

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摘要

A practical approach to assess the trade-offs in selecting the parameters that define the class of candidate models and that are commonly used in the Robust Identification framework is derived. The procedure minimizes the worst case identification error bound and guarantees consistency, according to all the experimental evidence. A consistency curve is defined, and upper and lower bounds are computed to graphically select these parameters.
机译:得出了一种在选择定义候选模型类别的参数以及在稳健识别框架中常用的参数时进行权衡的实用方法。根据所有实验证据,该程序可将最坏情况下的识别错误范围降到最低,并保证一致性。定义一致性曲线,并计算上下限以图形方式选择这些参数。

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