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Application of a Recursive Filter to a Three-Dimensional Variational Ocean Data Assimilation System 被引量:1

Application of a Recursive Filter to a Three-Dimensional Variational Ocean Data Assimilation System
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摘要 In order to improve the efficiency of the Ocean Variational Assimilation System (OVALS), which has been widely used in various applications, an improved OVALS (OVALS2) is developed based on the recursive filter (RF) algorithm. The first advantage of OVALS2 is that memory storage can be substantially reduced in practice because it implicitly computes the background error covariance matrix; the second advantage is that there is no inversion of the background error covariance by preconditioning the control variable. For comparing the effectiveness between OVALS2 and OVALS, a set of experiments was implemented by assimilating expendable bathythermograph (XBT) and ARGO data into the Tropical Pacific circulation model. The results show that the efficiency of OVALS2 is much higher than that of OVALS. The computational time and the computer storage in the assimilation process were reduced by 83% and 77%, respectively. Additionally, the corresponding results produced by the RF are almost as good as those obtained by OVALS. These results prove that OVALS2 is suitable for operational numerical oceanic forecasting. In order to improve the efficiency of the Ocean Variational Assimilation System (OVALS), which has been widely used in various applications, an improved OVALS (OVALS2) is developed based on the recursive filter (RF) algorithm. The first advantage of OVALS2 is that memory storage can be substantially reduced in practice because it implicitly computes the background error covariance matrix; the second advantage is that there is no inversion of the background error covariance by preconditioning the control variable. For comparing the effectiveness between OVALS2 and OVALS, a set of experiments was implemented by assimilating expendable bathythermograph (XBT) and ARGO data into the Tropical Pacific circulation model. The results show that the efficiency of OVALS2 is much higher than that of OVALS. The computational time and the computer storage in the assimilation process were reduced by 83% and 77%, respectively. Additionally, the corresponding results produced by the RF are almost as good as those obtained by OVALS. These results prove that OVALS2 is suitable for operational numerical oceanic forecasting.
作者 刘叶 闫长香
出处 《Advances in Atmospheric Sciences》 SCIE CAS CSCD 2010年第2期293-302,共10页 大气科学进展(英文版)
基金 supported by the Chinese Academy of Science(Contract No. KZCX2-YW-202) the 973 Pro-gram (Grant No. 2006CB403606) the National Natural Science Foundation of China (Grant Nos. 40606008,40776011)
关键词 recursive filter background error covariance the Ocean Variational Assimilation System (OVALS) recursive filter, background error covariance, the Ocean Variational Assimilation System (OVALS)
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