A Non-Krylov Subspace Method for Solving Large and Sparse Linear System of Equations

Author:

Peng Wujian,Lin Qun

Abstract

AbstractMost current prevalent iterative methods can be classified into the socalled extended Krylov subspace methods, a class of iterative methods which do not fall into this category are also proposed in this paper. Comparing with traditional Krylov subspace methods which always depend on the matrix-vector multiplication with a fixed matrix, the newly introduced methods (the so-called (progressively) accumulated projection methods, or AP (PAP) for short) use a projection matrix which varies in every iteration to form a subspace from which an approximate solution is sought. More importantly an accelerative approach (called APAP) is introduced to improve the convergence of PAP method. Numerical experiments demonstrate some surprisingly improved convergence behavior. Comparison between benchmark extended Krylov subspace methods (Block Jacobi and GMRES) are made and one can also see remarkable advantage of APAP in some examples. APAP is also used to solve systems with extremely ill-conditioned coefficient matrix (the Hilbert matrix) and numerical experiments shows that it can bring very satisfactory results even when the size of system is up to a few thousands.

Publisher

Global Science Press

Subject

Applied Mathematics,Computational Mathematics,Control and Optimization,Modeling and Simulation

Reference25 articles.

Cited by 2 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. New Parallel Algorithms for Direct Solution of Large Sparse Matrix Equations;2018 10th International Conference on Measuring Technology and Mechatronics Automation (ICMTMA);2018-02

2. An orthogonally accumulated projection method for symmetric linear system of equations;Science China Mathematics;2016-04-06

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