DocumentCode
2509405
Title
Entropic bounds on FSM switching
Author
Tyagi, Akhilesh
Author_Institution
Dept. of Comput. Sci., Iowa State Univ., Ames, IA, USA
fYear
1996
fDate
12-14 Aug 1996
Firstpage
323
Lastpage
328
Abstract
Several state assignment algorithms have attempted to minimize the average Hamming distance per transition in the hopes of generating low power assignments. There has not been a reasonable theoretical lower bound on the average Hamming distance per transition that is applicable to every state assignment for a given FSM. Such a lower bound serves many roles-a target for algorithm designers, provides clues about what types of FSM structures ore likely to have low average switching per transition, could be incorporated into a high-level power model. We provide two such lower bounds which were also found to be achievable empirically within 17% for MCNC benchmarks. An interesting by product of one of these `theoretical´ lower bounds was a greedy state assignment algorithm which is amenable to a very distributed (parallel) implementation. This algorithm also outperforms JEDI by 2.5% for area and by 21% for power over MCNC benchmarks
Keywords
Hamming codes; entropy; finite state machines; state assignment; FSM switching; Hamming distance; MCNC benchmarks; entropic bounds; greedy algorithm; state assignment algorithms; Algorithm design and analysis; Computer science; Entropy; Hamming distance; Power generation; Probability distribution; Steady-state; Turning; Upper bound;
fLanguage
English
Publisher
ieee
Conference_Titel
Low Power Electronics and Design, 1996., International Symposium on
Conference_Location
Monterey, CA
Print_ISBN
0-7803-3571-6
Type
conf
DOI
10.1109/LPE.1996.547533
Filename
547533
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