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Locality-Driven Parallel Power Grid Optimization

机译:局部驱动的并行电网优化

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摘要

Large very large-scale-integration power/ground distribution networks are challenging to analyze and design due to the sheer network complexity. In this paper, a parallel sizing optimization approach is presented to minimize the wiring area of a power grid while meeting IR drop and electromigration constraints. Motivated by a proposed two-level hierarchical optimization, we present a novel locality-driven partitioning scheme to allow for divide-and-conquer-based scalable optimization of large power grids, which is infeasible via flat optimization. Unlike existing partitioning-based strategies, the proposed method is very flexible in terms of choice of partitioning boundaries and sizes. Equally importantly, it allows for simultaneous sizing of multiple partitions, leading itself naturally to parallelization.
机译:由于纯粹的网络复杂性,大型非常大规模的集成电源/地面配电网络在分析和设计方面具有挑战性。在本文中,提出了一种并行的尺寸优化方法,以在满足IR下降和电迁移约束的同时最小化电网的布线面积。受提议的两级分层优化的启发,我们提出了一种新颖的局部驱动的分区方案,以允许基于分割和征服的大型电网可扩展优化,这是无法通过平面优化实现的。与现有的基于分区的策略不同,该方法在分区边界和大小的选择方面非常灵活。同样重要的是,它允许同时调整多个分区的大小,从而自然而然地实现了并行化。

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