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首页> 外文期刊>SIAM Journal on Scientific Computing >Multilevel monte carlo finite volume methods for shallow water equations with uncertain topography in multi-dimensions
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Multilevel monte carlo finite volume methods for shallow water equations with uncertain topography in multi-dimensions

机译:多维不确定地形的浅水方程组的多级蒙特卡洛有限体积方法

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摘要

The initial data and bottom topography, used as inputs in shallow water models, are prone to uncertainty due to measurement errors. We model this uncertainty statistically in terms of random shallow water equations. We extend the multilevel Monte Carlo (MLMC) algorithm to numerically approximate the random shallow water equations efficiently. The MLMC algorithm is suitably modified to deal with uncertain (and possibly uncorrelated) data on each node of the underlying topography grid by the use of a hierarchical topography representation. Numerical experiments in one and two space dimensions are presented to demonstrate the efficiency of the MLMC algorithm.
机译:初始数据和底部地形在浅水模型中用作输入,由于测量误差,容易出现不确定性。我们根据随机浅水方程对这一不确定性进行统计建模。我们扩展了多级蒙特卡洛(MLMC)算法,以对数值进行有效地近似随机浅水方程。通过使用分层地形表示法,对MLMC算法进行了适当的修改,以处理基础地形网格的每个节点上的不确定(可能不相关)数据。进行了一维和二维空间的数值实验,以证明MLMC算法的效率。

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