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Study of the minimum experiment length to identify linear dynamic systems: A variance based approach

机译:确定线性动态系统的最小实验长度的研究:基于方差的方法

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In this paper the effect of short data lengths in system identification is studied. It addresses the question of the minimum required data length that is needed in order to apply the asymptotic results on the uncertainty analysis. this paper is focused on the IIR-case by analyzing initially a first order system. The conclusions are extended to higher order systems by normalizing all results on the time constant of this system, and by adding a model complexity factor.
机译:本文研究了短数据长度对系统识别的影响。它解决了将渐近结果应用于不确定性分析所需的最小所需数据长度的问题。本文首先通过分析一阶系统来研究IIR情况。通过将该系统的时间常数上的所有结果归一化并添加模型复杂性因子,可以将这些结论扩展到高阶系统。

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