Skill-assessments of statistical and Ensemble Kalman Filter data assimilative analyses using surface and deep observations in the Gulf of Mexico

Frontiers of Earth Science - Tập 7 - Trang 271-281 - 2013
Zhibin Sun1, Lie-Yauw Oey2, Yi-Hui Zhou3
1Universities Space Research Association, Columbia, USA
2Sayre Hall, Forrestal Campus, Princeton University, AOS, Princeton, USA
3Department of Biostatistics, University of North Carolina, Chapel Hill, USA

Tóm tắt

A new data assimilation algorithm (Quasi-EnKF) in ocean modeling, based on the Ensemble Kalman Filter scheme, is proposed in this paper. This algorithm assimilates not only surface measurements (sea surface height), but also deep (∼2000 m) temperature observations from the Gulf of Mexico into regional ocean models. With the use of the Princeton Ocean Model (POM), integrated for approximately two years by assimilating both surface and deep observations, this new algorithm was compared to an existing assimilation algorithm (Mellor-Ezer Scheme) at different resolutions. The results show that, by comparing the observations, the new algorithm outperforms the existing one.

Tài liệu tham khảo

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