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Abstract
The Regional Eta-coordinate Model (REM) has performed well in forecasting heavy rainfalls in China
in recent years. A four-dimensional variational assimilation system (4DVar) is developed to improve the
forecast skill of the REM. The tangent linear model and adjoint model codes are written according to the
"code to code" rule, and the establishment of the REM adjoint modeling system is introduced in detail
in this paper. The tangent linear and adjoint models of the REM are validated against the observational
data, and so is the gradient of the given cost function. It is shown that for the tangent linear model and
cost function, when the magnitude of perturbations is reduced, the verification results approach 1.0; when
the rounding error of computer is increased, the verification results depart off 1.0. In the validation of the
adjoint model, the values on the left- and right-hand sides of the algebraic formula are equal with 13-digit
accuracy. These results indicate that the tangent linear model and the adjoint model system of the REM are
successfully coded, and the gradient of the cost function is correctly calculated. By using the REM adjoint
modeling system, two 4DVar experiments and extended forecasts are performed using observational data for
two real cases in June 1998 and August 2000. The results show that forecasts of temperature, wind speed,
and specify humidity using the 4DVar-assimilated initial data are all improved at the end of the forecast
period. However, the performance of the 4DVar in forcasting rainfall is different in these two cases. The
prediction of location and amount of the accumulated rainfall is well improved in the first case, while in the
second case the prediction has no significant improvement. The problem may result from the fact that the
observational data used in the 4DVar for the second case are inadequate. This case will be studied further
in future work.
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Citation
WANG Tie, MU Mu. 2010: The REM Adjoint System and Its 4DVar Data Assimilation Experiments. Journal of Meteorological Research, 24(6): 749-761.
WANG Tie, MU Mu. 2010: The REM Adjoint System and Its 4DVar Data Assimilation Experiments. Journal of Meteorological Research, 24(6): 749-761.
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WANG Tie, MU Mu. 2010: The REM Adjoint System and Its 4DVar Data Assimilation Experiments. Journal of Meteorological Research, 24(6): 749-761.
WANG Tie, MU Mu. 2010: The REM Adjoint System and Its 4DVar Data Assimilation Experiments. Journal of Meteorological Research, 24(6): 749-761.
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