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首页> 外文期刊>Journal of marine systems: journal of the European Association of Marine Sciences and Techniques >A singular evolutive extended Kalman filter for data assimilation in oceanography
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A singular evolutive extended Kalman filter for data assimilation in oceanography

机译:用于海洋学数据同化的奇异进化卡尔曼滤波器

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In this work, we propose a modified form of the extended Kalman filter (KF) for assimilating oceanic data into numerical models. Its development consists essentially of approximating the error covariance matrix by a singular low rank matrix, which amounts in practice to making no correction in those directions for which the error is the most attenuated by the system. This not only reduces the implementation cost but may also improve the filter stability as well. These 'directions of correction' evolve with time according to the model evolution, which constitutes the most original feature of this filter and distinguishes it from other sequential assimilation methods based on the projection onto a fixed basis of functions. A method for initializing the filter based on the empirical orthogonal functions (EOF) is also described. An example of assimilation based on the quasi-geostrophic (QG) model for a square ocean domain with a certain wind stress forcing pattern is given. Although this is only a simple test case designed to assess the feasibility of the method, the results are very encouraging. (C) 1998 Elsevier Science B.V. All rights reserved. [References: 28]
机译:在这项工作中,我们提出了一种扩展形式的扩展卡尔曼滤波器(KF),用于将海洋数据同化为数值模型。它的发展主要包括通过一个奇异的低秩矩阵对误差协方差矩阵进行逼近,实际上,这相当于在系统对系统误差衰减最大的那些方向上不进行任何校正。这不仅降低了实施成本,而且还可以改善滤波器的稳定性。这些“校正方向”根据模型的发展随时间变化,这构成了该滤波器的最原始特征,并将其与基于固定功能投影的其他顺序同化方法区分开。还描述了一种用于基于经验正交函数(EOF)初始化滤波器的方法。给出了基于具有一定风向强迫模式的方形海洋域基于准地转(QG)模型的同化示例。尽管这只是设计用来评估该方法可行性的简单测试案例,但结果令人鼓舞。 (C)1998 Elsevier Science B.V.保留所有权利。 [参考:28]

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