DocumentCode :
2285036
Title :
VLSI architectures for multiplication in GF(2m) for application tailored digital signal processors
Author :
Drescher, Wolfram ; Fettweis, Gerhard
Author_Institution :
Dept. of Electr. Eng., Tech. Univ. Dresden, Germany
fYear :
1996
fDate :
30 Oct-1 Nov 1996
Firstpage :
55
Lastpage :
64
Abstract :
Finite field arithmetic plays an important role in coding theory, cryptography and their applications. Several hardware solutions using finite field arithmetic have already been developed but none of them are user programmable. This is probably one reason why BCH codes are not commonly used in mobile communication applications even though these codes have very desirable properties regarding burst error correction. This article presents architectures for multiplication in GF(2m ) applicable to digital signal processors. First a method is proposed to build an array of gates for hardware multiplication in GF(2 m). Then an approach is shown that combines the hardware of a typical standard binary arithmetic multiplier with a GF(2m) multiplier. Using this approach saves a considerable number of gates and decreases the bus load while increasing the latency of the standard binary multiplier unit only marginally. Finally, a solution of a combined 17×17 integer/GF(2m⩽8) multiplier is presented and discussed
Keywords :
BCH codes; Galois fields; VLSI; cryptography; digital arithmetic; digital signal processing chips; multiplying circuits; BCH codes; VLSI architectures; binary arithmetic multiplier; burst error correction; bus load; coding theory; cryptography; digital signal processors; finite field arithmetic; hardware multiplication; hardware solutions; mobile communication applications; Digital arithmetic; Digital signal processing; Digital signal processing chips; Digital signal processors; Digital systems; Galois fields; Hardware; Polynomials; Shift registers; Very large scale integration;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
VLSI Signal Processing, IX, 1996., [Workshop on]
Conference_Location :
San Francisco, CA
Print_ISBN :
0-7803-3134-6
Type :
conf
DOI :
10.1109/VLSISP.1996.558299
Filename :
558299
Link To Document :
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