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Operational prediction of acoustic properties in the ocean using multi-model statistics
Authors:M. Rixen  E. Ferreira-Coelho
Affiliation:SACLANT Undersea Research Centre, Viale San Bartolomeo 400, 19138 La Spezia (SP), Italy
Abstract:Super-ensemble (SE) multi-model forecasts optimize local combination of individual models which is superior to individual models because they allow for local correction and bias removal. Multi-model statistics are applied to optimize the forecast skills from ocean models with different resolution or configuration, run operationally during the MREA04 field experiment off the West coast of Portugal. The method, based on a training/forecast cycle uses linear regression optimization. The performance and the limitations of the different super-ensemble combinations and the individual models are discussed. The SE method is shown to reduce errors in sound velocity significantly for 24 h forecasts.
Keywords:Ocean models   Multi-model   Super-ensembles   Linear regression   Sound velocity
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