DocumentCode :
2800193
Title :
Fast algorithms for IR drop analysis in large power grid
Author :
Zhong, Yu ; Wong, Martin D F
Author_Institution :
Dept. of Electr. & Comput. Eng., Illinois Univ., Urbana, IL, USA
fYear :
2005
fDate :
6-10 Nov. 2005
Firstpage :
351
Lastpage :
357
Abstract :
Due to the extremely large size of power grids, IR drop analysis has become a computationally challenging problem both in terms of runtime and memory usage. Although IR drop analysis can be naturally formulated as the problem of solving a linear system, the system is too large to be solved by existing linear solvers. In this paper, we present two iterative algorithms based on node-by-node traversals and row-by-row traversals of the power grid, respectively. Our algorithms are extremely fast and guarantee convergence to the exact solutions. In fact, they can be considered as efficient implementations of the classical successive over relaxation iterative method for solving linear systems. Our methods take full advantage of the special structure of the power grid. Experimental results show that our algorithms out-perform the random-walk-based algorithm which is the best known method today. For a 16-million node problem, our row-based algorithm took 26.47 minutes while the random-walk-based algorithm took 19.6 hours. Our row-based algorithm produced an exact solution while the random walk produced a solution with maximum error of 5.7 mV.
Keywords :
VLSI; electric potential; iterative methods; linear systems; power supply circuits; random processes; 19.6 hours; 26.47 mins; 5.7 mV; IR drop analysis; fast algorithms; iterative algorithms; large power grid; linear system; node-by-node traversals; random-walk-based algorithm; row-based algorithm; row-by-row traversals; successive over relaxation iterative method; Algorithm design and analysis; Power engineering and energy; Power engineering computing; Power grids;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computer-Aided Design, 2005. ICCAD-2005. IEEE/ACM International Conference on
Print_ISBN :
0-7803-9254-X
Type :
conf
DOI :
10.1109/ICCAD.2005.1560093
Filename :
1560093
Link To Document :
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