Study and application of an improved four-dimensional variational assimilation system based on the physical-space statistical analysis for the South China Sea
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作者:
Yumin Chen
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机构:National University of Defense Technology,College of Meteorology and Oceanology
Yumin Chen
Jie Xiang
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机构:National University of Defense Technology,College of Meteorology and Oceanology
Jie Xiang
Huadong Du
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机构:National University of Defense Technology,College of Meteorology and Oceanology
Huadong Du
Sixun Huang
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机构:National University of Defense Technology,College of Meteorology and Oceanology
Sixun Huang
Qingtao Song
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机构:National University of Defense Technology,College of Meteorology and Oceanology
Qingtao Song
机构:
[1] National University of Defense Technology,College of Meteorology and Oceanology
[2] The 93056 Army of People’s Liberation Army,State Key Laboratory of Satellite Ocean Environment Dynamics, Second Institute of Oceanography
[3] Ministry of Natural Resources,undefined
[4] National Satellite Ocean Application Service,undefined
来源:
Acta Oceanologica Sinica
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2021年
/
40卷
关键词:
four-dimensional variational data assimilation (4D-Var);
physical space analysis system (PSAS);
conjugate gradient algorithm (CG);
minimal residual algorithm (MINRES);
South China Sea;
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摘要:
The four-dimensional variational assimilation (4D-Var) has been widely used in meteorological and oceanographic data assimilation. This method is usually implemented in the model space, known as primal approach (P4D-Var). Alternatively, physical space analysis system (4D-PSAS) is proposed to reduce the computation cost, in which the 4D-Var problem is solved in physical space (i.e., observation space). In this study, the conjugate gradient (CG) algorithm, implemented in the 4D-PSAS system is evaluated and it is found that the non-monotonic change of the gradient norm of 4D-PSAS cost function causes artificial oscillations of cost function in the iteration process. The reason of non-monotonic variation of gradient norm in 4D-PSAS is then analyzed. In order to overcome the non-monotonic variation of gradient norm, a new algorithm, Minimum Residual (MINRES) algorithm, is implemented in the process of assimilation iteration in this study. Our experimental results show that the improved 4D-PSAS with the MINRES algorithm guarantees the monotonic reduction of gradient norm of cost function, greatly improves the convergence properties of 4D-PSAS as well, and significantly restrains the numerical noises associated with the traditional 4D-PSAS system.
机构:
Chinese Acad Sci, South China Sea Inst Oceanol, State Key Lab Trop Oceanog, Xingang West Rd 164, Guangzhou 510301, Guangdong, Peoples R China
Qinzhou Univ, Sch Oceanog, Qinzhou 535000, Peoples R ChinaChinese Acad Sci, South China Sea Inst Oceanol, State Key Lab Trop Oceanog, Xingang West Rd 164, Guangzhou 510301, Guangdong, Peoples R China
Peng, Shiqiu
Zeng, Xuezhi
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机构:
State Ocean Adm, South China Sea Marine Predict Ctr, Guangzhou 510310, Guangdong, Peoples R ChinaChinese Acad Sci, South China Sea Inst Oceanol, State Key Lab Trop Oceanog, Xingang West Rd 164, Guangzhou 510301, Guangdong, Peoples R China
Zeng, Xuezhi
Li, Zhijin
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机构:
CALTECH, Jet Prop Lab, Pasadena, CA USAChinese Acad Sci, South China Sea Inst Oceanol, State Key Lab Trop Oceanog, Xingang West Rd 164, Guangzhou 510301, Guangdong, Peoples R China