等权对最小二乘解导出参数的影响

Gamal H. Seedahmed
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引用次数: 0

摘要

等权是最小二乘解的一般策略,以反映例如通过相同的测量系统或类似的测量程序或算法获得的观测值的相等贡献。这种类型的权重可以隐式或显式地施加。隐式加权采用单位权重矩阵的形式,显式加权采用观测值方差值相等且已知的权重矩阵。通过理论和数值证明,等权不影响最小二乘解的估计参数和残差。此外,对于较大的观测值集,在隐式加权情况下,估计方差分量收敛于原始观测值的方差;在显式加权的情况下它会收敛到一个非常接近于1的值。此外,调整后隐式和显式情况下的后验方差-协方差或离散矩阵非常接近。在本研究中,采用蒙特卡罗模拟从正态分布中生成随机噪声的数值。这种随机噪声被添加到一条直线的坐标上,以便对所提出的论点进行实际评估。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
On The Effects of Equal Weights on the Derived Parameters From Least Squares Solution
Equal weighting is a general strategy in the least squares solutions to reflect the equal contribution of observations that were obtained, for example, by identical measurement systems or similar measurement procedures or algorithms. This type of weighting can be imposed either implicitly or explicitly. Implicit weighting takes the form of an identity weight matrix while explicit weighting is imposed by a weight matrix of equal and known variance value of the observations. Through theoretical and numerical demonstrations, this paper shows that equal weights do not affect the estimated parameters and the residuals in the least squares solution. Moreover, for a relatively large set of observations, the estimated variance component converges to the variance of the original observations in the case of the implicit weighting; and it converges to a value that is very close to one in the case of explicit weighting. In addition, the posterior variance-covariance or dispersion matrices in the implicit and explicit cases are very close to each other after the adjustment. In this study, Monte Carlo simulation was used to generate numerical values of random noise from a normal distribution. This random noise was added to the coordinates of a straight-line for practical evaluation of the proposed arguments.
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