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On Aggressive Early Deflation in Parallel Variants of the QR Algorithm

机译:QR算法并行变体中的激进早期放气

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The QR algorithm computes the Schur form of a matrix and is by far the most popular approach for solving dense nonsymmet-ric eigenvalue problems. Multishift and aggressive early deflation (AED) techniques have led to significantly more efficient sequential implementations of the QR algorithm during the last decade. More recently, these techniques have been incorporated in a novel parallel QR algorithm on hybrid distributed memory HPC systems. While leading to significant performance improvements, it has turned out that AED may become a computational bottleneck as the number of processors increases. In this paper, we discuss a two-level approach for performing AED in a parallel environment, where the lower level consists of a novel combination of AED with the pipelined QR algorithm implemented in the ScaLAPACK routine PDLAHQR. Numerical experiments demonstrate that this new implementation further improves the performance of the parallel QR algorithm.
机译:QR算法可计算矩阵的Schur形式,是迄今为止解决稠密的非对称特征值问题的最流行方法。在过去的十年中,多班次和积极的早期放气(AED)技术已导致QR算法的顺序执行效率大大提高。最近,这些技术已并入混合分布式内存HPC系统中的新型并行QR算法中。虽然带来了显着的性能改进,但事实证明,随着处理器数量的增加,AED可能会成为计算瓶颈。在本文中,我们讨论了一种在并行环境中执行AED的两级方法,其中较低级别由AED与ScaLAPACK例程PDLAHQR中实现的流水线QR算法的新颖组合组成。数值实验表明,该新实现进一步提高了并行QR算法的性能。

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