DocumentCode :
18488
Title :
Gabor Filter Based on Stochastic Computation
Author :
Onizawa, Naoya ; Katagiri, Daisaku ; Matsumiya, Kazumichi ; Gross, Warren J. ; Hanyu, Takahiro
Author_Institution :
Frontier Res. Inst. of Interdiscipl. Sci., Tohoku Univ., Sendai, Japan
Volume :
22
Issue :
9
fYear :
2015
fDate :
Sept. 2015
Firstpage :
1224
Lastpage :
1228
Abstract :
This letter introduces a design and proof-of-concept implementation of Gabor filters based on stochastic computation for area-efficient hardware. The Gabor filter exhibits a powerful image feature extraction capability, but it requires significant computational power. Using stochastic computation, a sine function used in the Gabor filter is approximated by exploiting several stochastic tanh functions designed based on a state machine. A stochastic Gabor filter realized using the stochastic sine shaper and a stochastic exponential function is simulated and compared with the original Gabor filter that shows almost equivalent behaviour at various frequencies and variance. A root-mean-square error of 0.043 at most is observed. In order to reduce long latency due to stochastic computation, 68 parallel stochastic Gabor filters are implemented in Silterra 0.13 μm CMOS technology. As a result, the proposed Gabor filters achieve a 78% area reduction compared with a conventional Gabor filter while maintaining the comparable speed.
Keywords :
CMOS integrated circuits; Gabor filters; feature extraction; finite state machines; mean square error methods; stochastic systems; Gabor filter; Silterra CMOS technology; area efficient hardware; equivalent behaviour; image feature extraction capability; root mean square error; sine function; size 0.13 mum; state machine; stochastic computation; stochastic exponential function; stochastic sine shaper; stochastic tanh functions; Computers; Digital circuits; Educational institutions; Hardware; Input variables; Logic gates; Materials; Digital circuit implementation; stochastic computing;
fLanguage :
English
Journal_Title :
Signal Processing Letters, IEEE
Publisher :
ieee
ISSN :
1070-9908
Type :
jour
DOI :
10.1109/LSP.2015.2392123
Filename :
7010006
Link To Document :
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