DocumentCode
3005158
Title
Efficient exact two-level hazard-free logic minimization
Author
Myers, Chris ; Jacobson, Hans
Author_Institution
Dept. of Electr. Eng., Utah Univ., Salt Lake City, UT, USA
fYear
2001
fDate
2001
Firstpage
64
Lastpage
73
Abstract
This paper presents a new approach to two-level hazard free sum-of-products logic minimization. No currently available minimizers for single-output literal-exact two-level hazard-free logic minimization can handle large circuits without synthesis times ranging up over thousands of seconds. The logic minimization approach presented in this paper is based on state graph exploration in conjunction with single-cube cover algorithms. Our algorithm achieves fast logic minimization by using compacted state graphs and cover tables and an efficient algorithm for single-output minimization. Our exact two-level hazard-free logic minimizer finds a minimal number of literal solutions and is significantly faster than existing literal exact methods-over two orders of magnitude faster for the largest extended burst-mode benchmarks to date. This includes a benchmark that has never been possible to solve exactly in a number of literals before
Keywords
asynchronous circuits; graph theory; logic simulation; minimisation of switching nets; multivalued logic circuits; state assignment; burst-mode benchmarks; compacted state graphs; cover tables; exact two-level hazard-free logic minimization; single-cube cover algorithms; single-output minimization; state graph exploration; sum-of-products logic minimization; synthesis times; Asynchronous circuits; Automata; Circuit synthesis; Computer science; Integrated circuit synthesis; Jacobian matrices; Logic circuits; Minimization methods; Partitioning algorithms; Protocols;
fLanguage
English
Publisher
ieee
Conference_Titel
Asynchronus Circuits and Systems, 2001. ASYNC 2001. Seventh International Symposium on
Conference_Location
Salt Lake City, UT
ISSN
1522-8681
Print_ISBN
0-7695-1034-5
Type
conf
DOI
10.1109/ASYNC.2001.914070
Filename
914070
Link To Document