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首页> 外文期刊>Journal of marine systems: journal of the European Association of Marine Sciences and Techniques >Operational surface drift prediction using linear and non-linear hyper-ensemble statistics on atmospheric and ocean models
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Operational surface drift prediction using linear and non-linear hyper-ensemble statistics on atmospheric and ocean models

机译:使用大气和海洋模型的线性和非线性超集合统计量进行的工作面漂移预测

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摘要

Multimodel super-ensemble forecasts, which exploit the power of an optimal local combination of individual models usually show superior forecasting skills when compared to individual models because they allow for local correction and/or bias removal. Deterministic approaches to the problem of surface drift are often limited by strong assumptions on the underlying physics. A new approach based on linear and non-linear optimization is proposed, using hyper-ensemble deduced statistics to forecast at short time scale Lagrangian drifts from combined atmospheric and ocean operational models and local observations that were made available during the MREA04 field experiment along the West coast of Portugal. Optimization methods are based on a training/forecast cycle. The performance and the limitations of the hyper-ensembles and the individual models are discussed. Results suggest that our statistical methods reduce the position errors significantly for 12 to 48 h forecasts and hence compete with pure deterministic approaches. (c) 2006 NATO Undersea Research Centre (NURC). Published by Elsevier B.V. All rights reserved.
机译:与单个模型相比,利用单个模型的最佳局部组合能力的多模型超级集合预测通常显示出出众的预测技能,因为它们允许局部校正和/或消除偏差。对表面漂移问题的确定性方法通常受到对基础物理学的强烈假设的限制。提出了一种基于线性和非线性优化的新方法,该方法使用超集合演绎统计数据,通过结合大气和海洋操作模型以及在MREA04沿西进行的野外实验期间获得的局部观测值,在短时间内对拉格朗日漂移进行预测葡萄牙海岸。优化方法基于训练/预测周期。讨论了超集合和单个模型的性能和局限性。结果表明,我们的统计方法可在12至48小时的预报中显着减少位置误差,因此可与纯确定性方法竞争。 (c)2006年北约海底研究中心。由Elsevier B.V.发布。保留所有权利。

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