DocumentCode :
29291
Title :
1 kHz 2D Visual Motion Sensor Using 20 ,\\times, 20 Silicon Retina Optical Sensor and DSP Microcontroller
Author :
Shih-Chii Liu ; Minhao Yang ; Steiner, Andreas ; Moeckel, Rico ; Delbruck, Tobi
Author_Institution :
Inst. of Neuroinf., Univ. of Zurich, Zürich, Switzerland
Volume :
9
Issue :
2
fYear :
2015
fDate :
Apr-15
Firstpage :
207
Lastpage :
216
Abstract :
Optical flow sensors have been a long running theme in neuromorphic vision sensors which include circuits that implement the local background intensity adaptation mechanism seen in biological retinas. This paper reports a bio-inspired optical motion sensor aimed towards miniature robotic and aerial platforms. It combines a 20 × 20 continuous-time CMOS silicon retina vision sensor with a DSP microcontroller. The retina sensor has pixels that have local gain control and adapt to background lighting. The system allows the user to validate various motion algorithms without building dedicated custom solutions. Measurements are presented to show that the system can compute global 2D translational motion from complex natural scenes using one particular algorithm: the image interpolation algorithm (I2A). With this algorithm, the system can compute global translational motion vectors at a sample rate of 1 kHz, for speeds up to ±1000 pixels/s, using less than 5 k instruction cycles (12 instructions per pixel) per frame. At 1 kHz sample rate the DSP is 12% occupied with motion computation. The sensor is implemented as a 6 g PCB consuming 170 mW of power.
Keywords :
CMOS image sensors; bio-inspired materials; biological techniques; digital signal processing chips; eye; optical sensors; robot vision; silicon; 2D visual motion sensor; DSP microcontroller; I2A; PCB; aerial platforms; background lighting; bio-inspired optical motion sensor; biological retinas; complex natural scenes; continuous-time CMOS silicon retina vision sensor; frequency 1 kHz; global 2D translational motion; global translational motion vectors; image interpolation algorithm; local background intensity adaptation mechanism; local gain control; miniature robotic; motion algorithm; motion computation; neuromorphic vision sensors; optical flow sensors; power 170 mW; Arrays; Biomedical optical imaging; Noise; Optical imaging; Optical sensors; Photoreceptors; Robot sensing systems; Computational vision sensor; microflyer vision sensor; neuromorphic engineering; optical flow; silicon retina;
fLanguage :
English
Journal_Title :
Biomedical Circuits and Systems, IEEE Transactions on
Publisher :
ieee
ISSN :
1932-4545
Type :
jour
DOI :
10.1109/TBCAS.2015.2414881
Filename :
7086345
Link To Document :
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