DocumentCode
814878
Title
Modeling, calibration, and rendition of color logarithmic CMOS image sensors
Author
Joseph, Dileepan ; Collins, Steve
Author_Institution
Dept. of Eng. Sci., Univ. of Oxford, UK
Volume
52
Issue
5
fYear
2003
Firstpage
1581
Lastpage
1587
Abstract
Logarithmic CMOS image sensors encode a high dynamic range scene in a manner that roughly approximates human perception whereas linear sensors with equivalent quantization suffer from saturation or loss of detail. Moreover, the continuous response of logarithmic pixels permit high frame rates and random access, features that are useful in motion detection. This paper describes how to model, calibrate, and render pixel responses from a color logarithmic sensor into a standard color space. The work unifies color theory in conventional linear sensors and fixed pattern noise theory in monochromatic logarithmic sensors. Experiments with a Fuga 15RGB sensor demonstrate calibration and rendition using a Macbeth chart and neutral density filters. Color rendition of the sensor with an empirical model, tested over three decades of dynamic range, competes with conventional digital cameras, tested over 1.5 decades. Photodiode leakage currents complicate modeling and calibration and degrade rendition in dim lighting.
Keywords
CMOS image sensors; calibration; image colour analysis; photodiodes; CMOS image sensors; Macbeth chart; calibration; color image sensors; color theory; digital cameras; dim lighting; dynamic range; fixed pattern noise theory; frame rates; high dynamic range scene; logarithmic image sensors; logarithmic pixels; monochromatic sensors; motion detection; neutral density filters; photodiode leakage currents; random access; rendition; CMOS image sensors; Calibration; Colored noise; Dynamic range; Humans; Layout; Motion detection; Quantization; Semiconductor device modeling; Testing;
fLanguage
English
Journal_Title
Instrumentation and Measurement, IEEE Transactions on
Publisher
ieee
ISSN
0018-9456
Type
jour
DOI
10.1109/TIM.2003.818551
Filename
1240175
Link To Document