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Thick-restart block Lanczos method for large-scale shell-model calculations

机译:用于大型壳牌模型计算的厚重启块Lanczos方法

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We propose a thick-restart block Lanczos method, which is an extension of the thick-restart Lanczos method with the block algorithm, as an eigensolver of the large-scale shell-model calculations. This method has two advantages over the conventional Lanczos method: the precise computations of the near-degenerate eigenvalues, and the efficient computations for obtaining a large number of eigenvalues. These features are quite advantageous to compute highly excited states where the eigenvalue density is rather high. A shell-model code, named KSHELL, equipped with this method was developed for massively parallel computations, and it enables us to reveal nuclear statistical properties which are intensively investigated by recent experimental facilities. We describe the algorithm and performance of the KSHELL code and demonstrate that the present method outperforms the conventional Lanczos method. (C) 2019 Elsevier B.V. All rights reserved.
机译:我们提出了一种厚重的块LanczoS方法,它是厚重启LanczoS方法的延伸,具有块算法,作为大规模壳模型计算的Eigensolver。 该方法与传统的LANCZOS方法具有两个优点:近退化特征值的精确计算,以及获得大量特征值的有效计算。 这些特征非常有利地计算高度激励的状态,其中特征值密度相当高。 为大规模并行计算开发了一种名为KShell的壳牌模型代码,该方法为大规模并行计算开发,并使我们能够通过最近的实验设施揭示核统计性质,这些特性是由最近的实验设施进行密集调查的核统计性质。 我们描述了KShell代码的算法和性能,并证明了本方法优于传统的LANCZOS方法。 (c)2019年Elsevier B.V.保留所有权利。

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