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Efficient posterior exploration of a high-dimensional groundwater model from two-stage Markov chain Monte Carlo simulation and polynomial chaos expansion

机译:两级马尔可夫链蒙特卡罗模拟和多项式混沌展开对高维地下水模型的高效后验

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摘要

This study reports on two strategies for accelerating posterior inference of a highly parameterized and CPU-demanding groundwater flow model. Our method builds on previous stochastic collocation approaches, e.g., Marzouk and Xiu (2009) and Marzouk and Najm (2009), and uses generalized polynomial chaos (gPC) theory and dimensionality reduction to emulate the output of a large-scale groundwater flow model. The resulting surrogate model is CPU efficient and serves to explore the posterior distribution at a much lower computational cost using two-stage MCMC simulation. The case study reported in this paper demonstrates a two to five times speed-up in sampling efficiency.
机译:这项研究报告了两种用于加速高度参数化和CPU需求的地下水流模型的后验推断的策略。我们的方法建立在之前的随机配置方法(例如Marzouk和Xiu(2009)和Marzouk和Najm(2009))的基础上,并使用广义多项式混沌(gPC)理论和降维方法来模拟大型地下水流模型的输出。生成的替代模型具有CPU效率,并且使用两阶段MCMC仿真以较低的计算成本来探索后验分布。本文报道的案例研究表明,采样效率提高了2到5倍。

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  • 来源
    《Water resources research》 |2013年第5期|2664-2682|共19页
  • 作者单位

    Belgian Nuclear Research Centre, Institute for Environment, Health and Safety, Mol 2400, Belgium;

    Belgian Nuclear Research Centre, Institute for Environment, Health and Safety Mol, Belgium ,Department of Earth and Environmental Sciences, KU Leuven, Heverlee, Belgium;

    Department of Civil and Environmental Engineering, University of California Irvine, Irvine, USA ,Institute for Biodiversity and Ecosystems Dynamics, University of Amsterdam, Amsterdam, Netherlands;

    CSIRO Land and Water, Urrbrae South Australia, Australia;

    Belgian Nuclear Research Centre, Institute for Environment, Health and Safety Mol, Belgium;

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