Title :
On-off differential current-mode circuits for Gabor-type spatial filtering
Author :
Shi, Bertram E. ; Choi, Thomas Yu Wing ; Boahen, Kwabena
Author_Institution :
Dept. of Electr. & Electron. Eng., Hong Kong Univ. of Sci. & Technol., Kowloon, China
Abstract :
We describe a current-mode circuit for Gabor-type image filtering which uses a differential representation where positive (ON) and negative (OFF) signals are encoded using separate channels. Previous current-mode implementations represented positive and negative signals as variations around a constant bias at every pixel. However, this bias current has several disadvantages. First, variations in it introduce significant additive fixed pattern noise to the output. Second, it dissipates power even with zero input. Third, if the output is encoded using the address event representation, the bias current sets up a quiescent firing rate which loads the bus. The architecture proposed here alleviates these problems since a zero signal is encoded as nearly zero current in both channels. On the other hand, the transistor count and the address space are doubled. Measurements from a 1 by 25 pixel array with a cell size of 64 μm by 540 μm was fabricated in the AMI 1.5 μm process available through MOSIS. Quiescent power dissipation was 5 μW total.
Keywords :
CMOS image sensors; analogue processing circuits; current-mode circuits; differential detection; image coding; image representation; integrated circuit design; integrated circuit measurement; optical information processing; spatial filters; 1.5 micron; 5 muW; 540 micron; 64 micron; AMI MOSIS fabricated process; Gabor-type spatial image filtering; IC address space; IC transistor count; address event representation output encoding; bias current; bus loading quiescent firing rate; differential signal representation architecture; on-off differential current-mode circuits; output additive fixed pattern noise; pixel array cell size; pixel constant bias variations; quiescent power dissipation; separate positive/negative channel encoding; zero input power dissipation; zero signal encoding; Additive noise; Band pass filters; Biomedical engineering; Circuit noise; Current mode circuits; Equations; Filtering; Gabor filters; Matched filters; Neurons;
Conference_Titel :
Circuits and Systems, 2002. ISCAS 2002. IEEE International Symposium on
Conference_Location :
Phoenix-Scottsdale, AZ
Print_ISBN :
0-7803-7448-7
DOI :
10.1109/ISCAS.2002.1011455