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Parallelized ensemble Kalman filter for hydraulic conductivity characterization

机译:并行集成卡尔曼滤波器用于水力传导率表征

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摘要

The ensemble Kalman filter (EnKF) is nowadays recognized as an excellent inverse method for hydraulic conductivity characterization using transient piezometric head data. Its implementation is well suited for a parallel computing environment. A parallel code has been designed that uses parallelization both in the forecast step and in the analysis step. In the forecast step, each member of the ensemble is sent to a different processor, while in the analysis step, the computations of the covariances are distributed between the different processors. An important aspect of the parallelization is to limit as much as possible the communication between the processors in order to maximize execution time reduction. Four tests are carried out to evaluate the performance of the parallelization with different ensemble and model sizes. The results show the savings provided by the parallel EnKF, especially for a large number of ensemble realizations.
机译:如今,集成卡尔曼滤波器(EnKF)被认为是使用瞬态测压头数据进行水力传导率表征的一种出色的逆方法。它的实现非常适合于并行计算环境。已经设计了在预测步骤和分析步骤中都使用并行化的并行代码。在预测步骤中,将合奏的每个成员发送到不同的处理器,而在分析步骤中,协方差的计算将分布在不同的处理器之间。并行化的一个重要方面是尽可能地限制处理器之间的通信,以最大程度地减少执行时间。进行了四个测试,以评估在不同集合和模型大小下并行化的性能。结果表明,并行EnKF可以节省很多成本,尤其是对于大量集成实现而言。

著录项

  • 来源
    《Computers & geosciences》 |2013年第3期|42-49|共8页
  • 作者单位

    Group of Hydrogeology, Universitat Politecnica de Valencia, Camino de Vera, s, 46022 Valencia, Spain;

    Group of Hydrogeology, Universitat Politecnica de Valencia, Camino de Vera, s, 46022 Valencia, Spain;

    Group of Hydrogeology, Universitat Politecnica de Valencia, Camino de Vera, s, 46022 Valencia, Spain;

    Group of Hydrogeology, Universitat Politecnica de Valencia, Camino de Vera, s, 46022 Valencia, Spain;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    parallel EnKF; cluster; hydraulic conductivity; parallel computing;

    机译:并行EnKF;簇;导水率并行计算;

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