可伸缩的无矢量电网电流完整性验证

Zhuo Feng
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引用次数: 3

摘要

为了应对日益严重的电迁移现象,电网电流完整性验证成为设计可靠输电网络必不可少的环节。与以往着重于电网无矢量电压完整性验证的工作不同,在这项工作中,我们首次提出了一个可扩展的无矢量电网电流完整性验证框架。利用多级电网验证,可以非常高效地完成大规模电网电流完整性验证任务。此外,提出了一种新颖的电磁感知几何电网缩减方法,可以在粗级电网上很好地保留原始电网的相似几何和电气特性,从而可以快速识别在给定电网设计中可能携带大于期望电流的潜在“热点”。所提出的多电平电网验证算法在电流完整性验证成本和解决方案质量之间提供了灵活的权衡,同时也可以有效地计算出流过导线的最坏情况下电流的期望上限/下限。大量的实验结果表明,我们现有的完整性验证方法可以有效地处理非常大的电网设计,并具有良好的解质量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Scalable vectorless power grid current integrity verification
To deal with the growing phenomenon of electromigration (EM), power grid current integrity verification becomes indispensable to designing reliable power delivery networks (PDNs). Unlike previous works that focus on vectorless voltage integrity verification of power grids, in this work, for the first time we present a scalable vectorless power grid current integrity verification framework. By taking advantage of multilevel power grid verifications, large-scale power grid current integrity verification tasks can be achieved in a very efficient way. Additionally, a novel EM-aware geometric power grid reduction method is proposed to well preserve the similar geometric and electrical properties of the original grid on the coarse-level power grids, which allows to quickly identify the potential “hot wires” that may carry greater-than-desired currents in a given power grid design. The proposed multilevel power grid verification algorithm provides flexible tradeoffs between the current integrity verification cost and solution quality, while the desired upper/lower bounds for worst case currents flowing through a wire can also be computed efficiently. Extensive experimental results show that our current integrity verification approach can efficiently handle very large power grid designs with good solution quality.
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