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Preconditioning and iterative solution of symmetric indefinite linear systems arising from interior point methods for linear programming

机译:线性规划的内点法引起的对称不定线性系统的预处理和迭代解。

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We propose to compute the search direction at each interior-point iteration for a linear program via a reduced augmented system that typically has a much smaller dimension than the original augmented system. This reduced system is potentially less susceptible to the ill-conditioning effect of the elements in the (1,1) block of the augmented matrix. A preconditioner is then designed by approximating the block structure of the inverse of the transformed matrix to further improve the spectral properties of the transformed system. The resulting preconditioned system is likely to become better conditioned toward the end of the interior-point algorithm. Capitalizing on the special spectral properties of the transformed matrix, we further proposed a two-phase iterative algorithm that starts by solving the normal equations with PCG in each IPM iteration, and then switches to solve the preconditioned reduced augmented system with symmetric quasi-minimal residual (SQMR) method when it is advantageous to do so. The experimental results have demonstrated that our proposed method is competitive with direct methods in solving large-scale LP problems and a set of highly degenerate LP problems.
机译:我们建议通过简化的增强系统来计算线性程序在每个内点迭代时的搜索方向,该系统通常具有比原始增强系统小得多的尺寸。这种简化的系统可能不太容易受到增强矩阵(1,1)块中元素的不良影响。然后通过近似已变换矩阵逆矩阵的块结构来设计预处理器,以进一步改善已变换系统的光谱特性。最终的预处理系统很可能在内部点算法即将结束时变得更好。利用变换后的矩阵的特殊频谱特性,我们进一步提出了一种两阶段迭代算法,该算法首先在每次IPM迭代中使用PCG求解正规方程,然后切换为求解具有对称拟最小残差的预处理简化增广系统。 (SQMR)方法,这样做比较有利。实验结果表明,我们提出的方法在解决大规模LP问题和一系列高度退化的LP问题方面具有直接方法的竞争力。

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