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Multiscale algorithm for atmospheric data assimilation
DOI:10.1137/S106482759528942X.png)
摘要
En 中文
We propose a novel multiscale algorithm for the problem of model assimilation of data. The algorithm allows one to efficiently perform optimal statistical interpolation of observed data from a given forecast w(f) and vector of observations w(o). The core of the new approach is a combination of two multiscale tools: a multiresolution iterative process and a multigrid fast-summation technique. Our approach allows efficient computations related to global filtering and interpolation of the observations, particularly between data-rich and data-sparse areas. In this paper, we describe an iterative process based on a multiresolution simultaneous displacement technique and a localized variational calculation of iteration parameters. We explain how this process can be efficiently combined with the multigrid fast-summation procedure.
Keyword:
data assimilation
iterative
multilevel
multiscale
multigrid
multiresolution
期刊
IF:
2.6
论文数:
5.1K
被引数:
1.8W
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引用论文
Kinetic Analysis of PRMT1 Reveals Multifactorial Processivity and a Sequential Ordered Mechanism
ChemBioChem
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