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A hierarchical partitioning strategy for an efficient parallelization of the multilevel fast multipole algorithm

机译:高效快速并行化多级快速多极算法的分层划分策略

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摘要

We present a novel hierarchical partitioning strategy for the efficient parallelization of the multilevel fast multipole algorithm (MLFMA) on distributed-memory architectures to solve large-scale problems in electromagnetics. Unlike previous parallelization techniques, the tree structure of MLFMA is distributed among processors by partitioning both clusters and samples of fields at each level. Due to the improved load-balancing, the hierarchical strategy offers a higher parallelization efficiency than previous approaches, especially when the number of processors is large. We demonstrate the improved efficiency on scattering problems discretized with millions of unknowns. In addition, we present the effectiveness of our algorithm by solving very large scattering problems involving a conducting sphere of radius 210 wavelengths and a complicated real-life target with a maximum dimension of 880 wavelengths. Both of the objects are discretized with more than 200 million unknowns. © 2009 IEEE.
机译:我们提出了一种新颖的分层分区策略,用于在分布式内存体系结构上有效并行化多级快速多极算法(MLFMA),以解决电磁学中的大规模问题。与以前的并行化技术不同,MLFMA的树结构通过在每个级别上划分群集和字段样本来在处理器之间分布。由于改进了负载平衡,因此与以前的方法相比,分层策略提供了更高的并行化效率,尤其是在处理器数量较大时。我们证明了在离散成千上万的未知数的散射问题上提高的效率。另外,我们通过解决非常大的散射问题(包括半径为210波长的导电球体和最大波长为880波长的复杂的现实目标)来展示算法的有效性。这两个对象都离散了超过2亿个未知数。 ©2009 IEEE。

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    Ergül Ö.; Gürel, L.;

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  • 年度 2009
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