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A general approach of least squares estimation and optimal filtering

机译:最小二乘估计和最佳滤波的一般方法

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摘要

The least squares method allows fitting parameters of a mathematical model from experimental data. This article proposes a general approach of this method. After introducing the method and giving a formal definition, the transitivity of the method as well as numerical considerations are discussed. Then two particular cases are considered: the usual least squares method and the Generalized Least Squares method. In both cases, the estimator and its variance are characterized in the time domain and in the Fourier domain. Finally, the equivalence of the Generalized Least Squares method and the optimal filtering technique using a matched filter is established.
机译:最小二乘法允许根据实验数据拟合数学模型的参数。本文提出了这种方法的一般方法。在介绍了该方法并给出了正式定义之后,讨论了该方法的可传递性以及数值方面的考虑。然后考虑两种特殊情况:通常的最小二乘法和广义最小二乘法。在这两种情况下,估计器及其方差均在时域和傅立叶域中表征。最后,建立了广义最小二乘方法与使用匹配滤波器的最优滤波技术的等价性。

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