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Efficient nonlinear data assimilation for oceanic models of intermediate complexity

机译:中等复杂度海洋模型的有效非线性数据同化

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A fully nonlinear particle filter is used on a simplified ocean model, consisting of the barotropic vorticity equation. While common knowledge is that particle filters are inefficient and need large numbers of model runs to avoid degeneracy, the newly developed particle filters need only of the order of 10–100 particles on large scale problems. Also, we show that the scaling is perfect in that increasing the dimension of the system does not need more particles. This opens the possibility for fully nonlinear filtering/smoothing in very high dimensional state spaces, e.g. for numerical weather forecasting.
机译:在正压涡度方程组成的简化海洋模型上使用了完全非线性的粒子滤波器。虽然通常的知识是粒子过滤器效率低下并且需要大量模型运行来避免退化,但是在大规模问题上,新开发的粒子过滤器仅需要10-100个粒子的数量级。此外,我们显示出缩放比例是完美的,因为增加系统的尺寸不需要更多的粒子。这就开辟了在非常高的维状态空间中进行完全非线性滤波/平滑的可能性。用于数值天气预报。

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