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A parallel Jacobi-Davidson-type method for solving large generalized eigenvalue problems in magnetohydrodynamics

机译:求解磁流体动力学中大型广义特征值问题的并行Jacobi-Davidson型方法

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We study the solution of generalized eigenproblems generated by a model which is used for stability investigation of tokamak plasmas. The eigenvalue problems are of the form Ax = lambda Bx, in which the complex matrices A and B are block-tridiagonal, and B is Hermitian positive definite. The Jacobi Davidson method appears to be an excellent method for parallel computation of a few selected eigenvalues because the basic ingredients are matrix vector products, vector updates, and inner products. The method is based on solving projected eigenproblems of order typically less than 30. We apply a complete block LU decomposition in which reordering strategies based on a combination of block cyclic reduction and domain decomposition result in a well-parallelizable algorithm. One decomposition can be used for the calculation of several eigenvalues. Spectral transformations are presented to compute certain interior eigenvalues and their associated eigenvectors. The convergence behavior of several variants of the Jacobi Davidson algorithm is examined. Special attention is paid to the parallel performance, memory requirements, and prediction of the speed-up. Numerical results obtained on a distributed memory Cray T3E are shown. [References: 18]
机译:我们研究了由模型产生的广义特征问题的解决方案,该模型用于托卡马克血浆的稳定性研究。特征值问题的形式为Ax = lambda Bx,其中复矩阵A和B是块对角线的,而B是Hermitian正定的。 Jacobi Davidson方法似乎是用于并行计算一些选定特征值的出色方法,因为基本成分是矩阵向量乘积,向量更新和内积。该方法基于求解通常小于30阶的投影特征值。我们应用了完整的块LU分解,其中基于块循环归约和域分解的组合的重排序策略可很好地并行化。一种分解可用于计算多个特征值。提出了频谱变换来计算某些内部特征值及其相关的特征向量。研究了Jacobi Davidson算法的几种变体的收敛行为。特别注意并行性能,内存要求和加速预测。显示了在分布式内存Cray T3E上获得的数值结果。 [参考:18]

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