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Lanczos-type algorithms with embedded interpolation and extrapolation models for solving large-scale systems of linear equations

机译:具有嵌入式插值和外推模型的Lanczos型算法,用于求解大型线性方程组

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The new approach to combating instability in Lanczos-type algorithms for large-scale problems is proposed. It is a modification of so called the embedded interpolation and extrapolation model in Lanczos-type algorithms (EIEMLA), which enables us to interpolate the sequence of vector solutions generated by a Lanczos-type algorithm entirely, without rearranging the position of the entries of the vector solutions. The numerical results show that the new approach performs more effectively than the EIEMLA. In fact, we extend this new approach on the use of a restarting framework to obtain the convergence of Lanczos algorithms accurately. This kind of restarting challenges other existing restarting strategies in Lanczos-type algorithms.
机译:提出了解决大规模问题的Lanczos型算法中的不稳定性的新方法。它是Lanczos型算法(EIEMLA)中所谓的嵌入式内插和外推模型的修改,它使我们能够完全内插Lanczos型算法生成的矢量解的序列,而无需重新排列图的项的位置。向量解决方案。数值结果表明,新方法比EIEMLA更有效。实际上,我们将这种新方法扩展到使用重新启动框架的使用上,以准确地获得Lanczos算法的收敛性。这种重启对Lanczos型算法中的其他现有重启策略提出了挑战。

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