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首页> 外文期刊>Computer-Aided Design of Integrated Circuits and Systems, IEEE Transactions on >Robust Parallel Preconditioned Power Grid Simulation on GPU With Adaptive Runtime Performance Modeling and Optimization
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Robust Parallel Preconditioned Power Grid Simulation on GPU With Adaptive Runtime Performance Modeling and Optimization

机译:基于自适应运行时性能建模和优化的GPU上健壮的并行预处理电网仿真

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摘要

Leveraging the power of nowadays graphics processing units for robust power grid simulation remains a challenging task. Existing preconditioned iterative methods that require incomplete matrix factorizations cannot be effectively accelerated on graphics processing unit (GPU) due to its limited hardware resource as well as data parallel computing. This paper presents an efficient GPU-based multigrid preconditioning algorithm for robust power grid analysis. By combining the fast geometric multigrid solver with the robust Krylov-subspace iterative solver, power grid DC and transient analysis can be performed efficiently on GPU without loss of accuracy (largest errors ${). Unlike previous GPU-based algorithms that rely on good power grid regularities, the proposed algorithm can be applied for more general power grid structures. Additionally, we also propose an accuracy-aware GPU performance modeling and optimization framework to automatically obtain the best power grid simulation configurations. Experimental results show that the DC and transient analysis on GPU can achieve more than $25X$ speedups over the best available CPU-based solvers.
机译:利用当今的图形处理单元进行强大的电网仿真仍然是一项艰巨的任务。由于图形处理单元(GPU)有限的硬件资源以及数据并行计算,因此无法在图形处理单元(GPU)上有效地加速需要不完全矩阵分解的现有预处理迭代方法。本文提出了一种有效的基于GPU的多网格预处理算法,用于稳健的电网分析。通过将快速几何多网格求解器与强大的Krylov-subspace迭代求解器结合使用,可以在GPU上高效地进行电网直流和瞬态分析,而不会损失精度(最大误差$ {)。与以前的依赖良好电网规则的基于GPU的算法不同,该算法可以应用于更通用的电网结构。此外,我们还提出了一种具有准确性的GPU性能建模和优化框架,以自动获得最佳的电网仿真配置。实验结果表明,与基于CPU的最佳求解器相比,GPU上的DC和瞬态分析可实现超过$ 25X $的加速。

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