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Deterministic Random Walk: A New Preconditioner for Power Grid Analysis

机译:确定性随机游走:电网分析的新前提

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Iterative linear equation solvers rely on high-quality preconditioners to achieve fast convergence. For sparse symmetric systems arising from large power grid analysis problems, however, preconditioners generated by traditional incomplete Cholesky factorization are usually of low quality, resulting in slow convergence. On the other hand, preconditioners generated by random walks are quite effective to reduce the number of iterations, though requiring considerable amount of time to compute in a stochastic manner. We propose in this paper a new preconditioning technique for power grid analysis, named that combines the advantages of the above two approaches. Our proposed algorithm computes the preconditioners in a deterministic manner to reduce computation time, while achieving similar quality as stochastic random walk preconditioning by modifying fill-ins to compensate dropped entries. We have proved that for such compensation scheme, our algorithm will always succeed, which otherwise cannot be guaranteed by traditional incomplete factorizations. We demonstrate that by incorporating our proposed preconditioner, a conjugate gradient solver is able to outperform a state-of-the-art algebraic multigrid preconditioned solver for dc analysis, and is very efficient for transient simulation on public IBM power grid benchmarks.
机译:迭代线性方程求解器依靠高质量的预处理器来实现快速收敛。但是,对于由大型电网分析问题引起的稀疏对称系统,传统的不完全Cholesky分解生成的预处理器通常质量较低,导致收敛缓慢。另一方面,尽管需要大量时间以随机方式进行计算,但随机游走生成的预处理器对于减少迭代次数非常有效。我们在本文中提出了一种新的电网分析预处理技术,该技术结合了以上两种方法的优点。我们提出的算法以确定性的方式计算预处理器,以减少计算时间,同时通过修改填充来补偿丢失的条目,从而获得与随机随机游走预处理相似的质量。我们已经证明,对于这种补偿方案,我们的算法将始终成功,否则传统的不完全因式分解无法保证。我们证明,通过结合我们提出的预处理器,共轭梯度求解器能够胜过用于直流分析的最先进的代数多重网格预处理器,并且对于在公共IBM电网基准上进行瞬态仿真非常有效。

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