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Conditioning of incremental variational data assimilation, with application to the Met Office system

机译:增量变异数据同化的条件,应用于Met Office系统

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摘要

Implementations of incremental variational data assimilation require the iterative minimization of a series of linear least-squares cost functions. The accuracy and speed with which these linear minimization problems can be solved is determined by the condition number of the Hessian of the problem. In this study, we examine how different components of the assimilation system influence this condition number. Theoretical bounds on the condition number for a single parameter system are presented and used to predict how the condition number is affected by the observation distribution and accuracy and by the specified lengthscales in the background error covariance matrix. The theoretical results are verified in the Met Office variational data assimilation system, using both pseudo-observations and real data.
机译:增量变化数据同化的实现要求迭代最小化一系列线性最小二乘成本函数。解决这些线性最小化问题的精度和速度取决于问题的Hessian条件数。在这项研究中,我们研究了同化系统的不同组成部分如何影响该条件数。给出了单参数系统条件编号的理论界限,并用于预测条件编号如何受到观察分布和准确性以及背景误差协方差矩阵中指定的长度尺度的影响。通过使用伪观测和真实数据,在Met Office变异数据同化系统中验证了理论结果。

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  • 来源
    《Tellus》 |2011年第4期|p.782-792|共11页
  • 作者单位

    Department of Mathematics and Statistics,P.O. Box 220, University of Reading, Reading, RG6 6AX, UK;

    Department of Mathematics and Statistics,P.O. Box 220, University of Reading, Reading, RG6 6AX, UK;

    Department of Mathematics and Statistics,P.O. Box 220, University of Reading, Reading, RG6 6AX, UK;

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