DocumentCode
2680659
Title
Power grid analysis with hierarchical support graphs
Author
Zhao, Xueqian ; Wang, Jia ; Feng, Zhuo ; Hu, Shiyan
Author_Institution
Dept. of Electr. & Comput. Eng., Michigan Technol. Univ., Houghton, MI, USA
fYear
2011
fDate
7-10 Nov. 2011
Firstpage
543
Lastpage
547
Abstract
It is increasingly challenging to analyze present day large-scale power delivery networks (PDNs) due to the drastically growing complexity in power grid design. To achieve greater runtime and memory efficiencies, a variety of preconditioned iterative algorithms has been investigated in the past few decades with promising performance, while incremental power grid analysis also becomes popular to facilitate fast re-simulations of corrected designs. Although existing preconditioned solvers, such as incomplete matrix factor-based preconditioners, usually exhibit high efficiency in memory usage, their convergence behaviors are not always satisfactory. In this work, we present a novel hierarchical support-graph preconditioned iterative algorithm that constructs preconditioners by generating spanning trees in power supply networks for fast power grid analysis. The support-graph preconditioner is efficient for handling complex power grid structures (regular or irregular grids), and can facilitate very fast incremental analysis. Our experimental results on IBM power grid benchmarks show that compared with the best direct or iterative solvers, the proposed support-graph preconditioned iterative solver achieves up to 3.6X speedups for DC analysis, and up to 22X speedups for incremental analysis, while reducing the memory consumption by a factor of four.
Keywords
iterative methods; power grids; trees (mathematics); IBM power grid benchmarks; factor-based preconditioners; fast incremental analysis; hierarchical support graphs; iterative solvers; large-scale power delivery networks; power grid analysis; power grid design; power supply networks; preconditioned iterative algorithms; spanning trees; support-graph preconditioner; Algorithm design and analysis; Benchmark testing; Convergence; Iterative methods; Linear systems; Power grids; Runtime;
fLanguage
English
Publisher
ieee
Conference_Titel
Computer-Aided Design (ICCAD), 2011 IEEE/ACM International Conference on
Conference_Location
San Jose, CA
ISSN
1092-3152
Print_ISBN
978-1-4577-1399-6
Electronic_ISBN
1092-3152
Type
conf
DOI
10.1109/ICCAD.2011.6105383
Filename
6105383
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