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Recursive set membership estimation for output–error fractional models with unknown–but–bounded errors

机译:具有未知但有界错误的输出错误分数模型的递归集成员估计

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This paper presents a new formulation for set-membership parameter estimation of fractional systems. In such a context, the error between the measured data and the output model is supposed to be unknown but bounded with a priori known bounds. The bounded error is specified over measurement noise, rather than over an equation error, which is mainly motivated by experimental considerations. The proposed approach is based on the optimal bounding ellipsoid algorithm for linear output-error fractional models. A numerical example is presented to show effectiveness and discuss results.
机译:本文提出了分数系统的集合成员参数估计的新公式。在这种情况下,被测数据和输出模型之间的误差被认为是未知的,但以先验已知边界为界。有界误差是针对测量噪声而不是方程式误差指定的,而方程式误差的确定主要是出于实验考虑。所提出的方法基于线性输出误差分数模型的最优边界椭球算法。给出了一个数值示例,以显示有效性并讨论结果。

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