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GPU-based fast decoupled power flow with preconditioned iterative solver and inexact newton method

机译:预处理迭代求解器和不精确牛顿法的基于GPU的快速解耦潮流

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Power flow is the most fundamental computation in power system analysis. Traditionally, the linear solution in power flow is solved by a direct method like LU decomposition on a CPU platform. However, direct methods may suffer scalability issues in parallel computing when the scale of the system increases. In contrast, iterative solvers, as an alternative to direct solvers, are generally more scalable with better parallelism. This work presents a fast decouple power flow (FDPF) algorithm with a graphic processing unit (GPU)-based preconditioned conjugate gradient (CG) iterative solver. In addition, the inexact Newton method is integrated to further improve the GPU-based parallel computing performance for solving FDPF. The results show that the GPU-based FDPF maintains the same precision and convergence as the original CPU-based FDPF, while providing considerable performance improvement for several large-scale systems. The proposed GPU-based FDPF with inexact Newton method gives a speedup of 2.86 times for a system with over 10,000 buses if compared with traditional FDPF, both implemented based on Matlab. This demonstrates the promising potential of the proposed FDPF computation using a preconditioned iterative solver under GPU architecture.
机译:潮流是电力系统分析中最基本的计算。传统上,功率流的线性解决方案是通过直接方法(如在CPU平台上进行LU分解)解决的。但是,当系统规模增加时,直接方法可能会在并行计算中遇到可伸缩性问题。相反,作为直接求解器的替代方案,迭代求解器通常具有更好的可扩展性和更好的并行性。这项工作提出了一种基于图形处理单元(GPU)的预处理共轭梯度(CG)迭代求解器的快速解耦功率流(FDPF)算法。此外,还集成了不精确的牛顿法,以进一步提高基于GPU的并行计算性能,以解决FDPF问题。结果表明,基于GPU的FDPF保持与原始基于CPU的FDPF相同的精度和收敛性,同时为多个大型系统提供了显着的性能改进。与传统的FDPF(均基于Matlab实施)相比,基于牛顿方法的基于GPU的FDPF使用不精确的牛顿方法可以使速度提高2.86倍。这证明了在GPU架构下使用预处理迭代求解器进行FDPF计算的潜力。

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