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Titel Conditional nonlinear optimal perturbation and its applications
VerfasserIn M. Mu, W. S. Duan, B. Wang
Medientyp Artikel
Sprache Englisch
ISSN 1023-5809
Digitales Dokument URL
Erschienen In: Nonlinear Processes in Geophysics ; 10, no. 6 ; Nr. 10, no. 6, S.493-501
Datensatznummer 250008205
Publikation (Nr.) Volltext-Dokument vorhandencopernicus.org/npg-10-493-2003.pdf
 
Zusammenfassung
Conditional nonlinear optimal perturbation (CNOP) is proposed to study the predictability of numerical weather and climate prediction. A simple coupled ocean-atmosphere model for ENSO is adopted as an example to show its applicability. In the case of climatological mean state being the basic state, it is shown that CNOP tends to evolve into El Niño or La Niña event more probably than linear singular vector (LSV) on the condition that CNOP and LSV are of the same magnitude of norm. CNOP is also employed to study the prediction error of El Niño and La Niña events. Comparisons between CNOP and LSV demonstrate that CNOP is more applicable in studying the predictability of the models governing the nonlinear motions of oceans and atmospheres.
 
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