DocumentCode
3283811
Title
Maximum power estimation for CMOS circuits using deterministic and statistic approaches
Author
Wang, Chuan-Yu ; Roy, Kaushik
Author_Institution
Dept. of Electr. & Comput. Eng., Purdue Univ., West Lafayette, IN, USA
fYear
1996
fDate
3-6 Jan 1996
Firstpage
364
Lastpage
369
Abstract
Excessive instantaneous power consumption in VLSI circuits may reduce the reliability and performance of VLSI chips. Hence, to synthesize circuits with high reliability, it is essential to efficiently obtain a precise estimation of the maximum power dissipation. However, due to the inherent input-pattern dependence of the problem, it is intractable to conduct an exhaustive search for circuits with a large number of primary inputs. Hence, the practical approach is to generate a tight lower bound and an upper bound for maximum power dissipation within a reasonable amount of CPU time. In this paper, instead of using the traditional simulation-based techniques, we propose a novel approach to obtain a lower bound of the maximum power consumption using Automatic Test Generation (ATG) technique. Experiments with MCNC and ISCAS-85 benchmark circuits show that our approach generates the lower bound with the quality which cannot be achieved using simulation-based techniques. In addition, a Monte Carlo based technique to estimate maximum power dissipation is described. It not only serves as a comparison version for our ATG approach, but also generates a metric to measure the quality of a lower bound from a statistical point of view
Keywords
CMOS digital integrated circuits; Monte Carlo methods; VLSI; automatic testing; circuit analysis computing; computational complexity; statistical analysis; ATG technique; CMOS circuits; Monte Carlo based technique; VLSI circuits; automatic test generation; deterministic approach; instantaneous power consumption; lower bound; maximum power estimation; statistic approach; Automatic testing; Central Processing Unit; Circuit simulation; Circuit synthesis; Circuit testing; Energy consumption; Power dissipation; Power generation; Upper bound; Very large scale integration;
fLanguage
English
Publisher
ieee
Conference_Titel
VLSI Design, 1996. Proceedings., Ninth International Conference on
Conference_Location
Bangalore
ISSN
1063-9667
Print_ISBN
0-8186-7228-5
Type
conf
DOI
10.1109/ICVD.1996.489636
Filename
489636
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