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首页> 外文期刊>International Journal for Numerical Methods in Engineering >Surrogate modeling of multiscale models using kernel methods
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Surrogate modeling of multiscale models using kernel methods

机译:使用核方法替代多尺度模型

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This work investigates the possibilities of acceleration and approximation of multiscale systems using kernel methods. The key element is to learn the interface between the different scales using a fast surrogate for the microscale model, which is given by multivariate kernel expansions. The expansions are computed using statistically representative samples of input and output of the microscale model. We apply both support vector machines and a vectorial kernel greedy algorithm as learning methods. We demonstrate the applicability of the resulting surrogate models using two multiscale models from different engineering disciplines. We consider, first, a human spine model coupling a macroscale multibody system with a microscale intervertebral spine disc model and, second, a model for simulation of saturation overshoots in porous media involving nonclassical shock waves. Copyright (c) 2014 John Wiley & Sons, Ltd.
机译:这项工作研究了使用核方法加速和逼近多尺度系统的可能性。关键要素是使用微尺度模型的快速替代来学习不同尺度之间的接口,该模型由多元内核扩展给出。使用微尺度模型的输入和输出的统计上具有代表性的样本来计算扩展。我们将支持向量机和向量内核贪婪算法都应用为学习方法。我们使用来自不同工程学科的两个多尺度模型论证了所得替代模型的适用性。我们首先考虑的是人体脊柱模型,该模型将大型多体系统与微型椎间盘模型相结合,其次,该模型用于模拟涉及非经典冲击波的多孔介质中的饱和超调量。版权所有(c)2014 John Wiley&Sons,Ltd.

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