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An Effcient Implementation of the Ensemble Kalman Filter Based on Iterative Sherman Morrison Formula

机译:基于迭代谢尔曼·莫里森公式的集成卡尔曼滤波器的有效实现

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This paper proposes an effcient implementation of the ensemble Kalman filter (EnKF) for the solution of largescale data assimilation problems. The implementation exploits the special structure of the covariance matrix and solves the analysis step by iteratively applying the Sherman Morrison formula. The iterative implementation leads to p savings in both memory and run time. The number of operations for the iterative method is O(n ens 2 .n obs , while for p 3the standard implementation the cost is O n obs . The new implementation of the EnKF is tested using the Lorenz 96 model and shows a better performance than EnKF with the direct computation of the inverse.
机译:本文提出了集成卡尔曼滤波器(EnKF)的有效实施方案,用于解决大规模数据同化问题。该实现利用协方差矩阵的特殊结构,并通过迭代应用Sherman Morrison公式来解决分析步骤。迭代实现可节省内存和运行时间p。迭代方法的运算次数为O(n ens 2 .n obs,而对于p 3而言,标准实现的成本为O n obs。使用Lorenz 96模型测试了EnKF的新实现,其性能优于用EnKF直接计算逆。

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