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首页> 外文期刊>Computer physics communications >Accelerating nuclear configuration interaction calculations through a preconditioned block iterative eigensolver
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Accelerating nuclear configuration interaction calculations through a preconditioned block iterative eigensolver

机译:通过预处理的封锁迭代Eigensolver加速核配置相互作用计算

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AbstractWe describe a number of recently developed techniques for improving the performance of large-scale nuclear configuration interaction calculations on high performance parallel computers. We show the benefit of using a preconditioned block iterative method to replace the Lanczos algorithm that has traditionally been used to perform this type of computation. The rapid convergence of the block iterative method is achieved by a proper choice of starting guesses of the eigenvectors and the construction of an effective preconditioner. These acceleration techniques take advantage of special structure of the nuclear configuration interaction problem which we discuss in detail. The use of a block method also allows us to improve the concurrency of the computation, and take advantage of the memory hierarchy of modern microprocessors to increase the arithmetic intensity of the computation relative to data movement. We also discuss the implementation details that are critical to achieving high performance on massively parallel multi-core supercomputers, and demonstrate that the new block iterative solver is two to three times faster than the Lanczos based algorithm for problems of moderate sizes on a Cray XC30 system.]]>
机译:<![cdata [ Abstract 我们描述了一些最近开发的技术,用于提高高性能并行计算机对大规模核配置交互计算的性能。我们展示了使用预处理的块迭代方法来替换传统上用于执行这种类型计算的LanczoS算法。通过正确选择特征向量和有效预处理器的构建来实现块迭代方法的快速收敛。这些加速技术利用我们详细讨论的核配置互动问题的特殊结构。块方法的使用还允许我们提高计算的并发性,并利用现代微处理器的存储器层次,以增加相对于数据移动计算的计算强度。我们还讨论了对在大规模并行多核超级计算机上实现高性能至关重要的实施细节,并证明新的街区迭代求解器的速度比基于LAN XC30系统的中等尺寸问题的基于Lanczos算法快两到三倍。 ]]>

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