DocumentCode
2382582
Title
Objective performance evaluation of a moving object super-resolution system
Author
Laflen, J. Brandon ; Greco, Christopher R. ; Brooksby, Glen W. ; Barrett, Eamon B.
fYear
2009
fDate
14-16 Oct. 2009
Firstpage
1
Lastpage
8
Abstract
We present evaluation of the performance of moving object super-resolution (MOSR) through objective image quality metrics. MOSR systems require detection, tracking, and local sub-pixel registration of objects of interest, prior to superresolution. Nevertheless, MOSR can provide additional information otherwise undetected in raw video. We measure the extent of this benefit through the following objective image quality metrics: (1) Modulation Transfer Function (MTF), (2) Subjective Quality Factor (SQF), (3) Image Quality from the Natural Scene (MITRE IQM), and (4) minimum resolvable Rayleigh distance (RD). We also study the impact of non-ideal factors, such as image noise, frame-to-frame jitter, and object rotation, upon this performance. To study these factors, we generated controlled sequences of synthetic images of targets moving against a random field. The targets exemplified aspects of the objective metrics, containing either horizontal, vertical, or circular sinusoidal gratings, or a field of impulses separated by varying distances. High-resolution sequences were rendered and then appropriately filtered assuming a circular aperture and square, filled collector prior to decimation. A fully implemented MOSR system was used to generate super-resolved images of the moving targets. The MTF, SQF, IQM, and RD measures were acquired from each of the high, low, and super-resolved image sequences, and indicate the objective benefit of super-resolution. To contrast with MOSR, the low-resolution sequences were also up-sampled in the Fourier domain, and the objective measures were collected for these Fourier up-sampled sequences, as well. Our study consisted of over 800 different sequences, representing various combinations of non-ideal factors.
Keywords
Fourier transforms; image resolution; image sequences; optical transfer function; performance evaluation; Fourier domain; Rayleigh distance; gratings; modulation transfer function; moving object superresolution system; objective image quality metrics; objective performance evaluation; subjective quality factor; synthetic target image sequence; Apertures; Gratings; Image quality; Image resolution; Jitter; Layout; Object detection; Q factor; Rendering (computer graphics); Transfer functions;
fLanguage
English
Publisher
ieee
Conference_Titel
Applied Imagery Pattern Recognition Workshop (AIPRW), 2009 IEEE
Conference_Location
Washington, DC
ISSN
1550-5219
Print_ISBN
978-1-4244-5146-3
Electronic_ISBN
1550-5219
Type
conf
DOI
10.1109/AIPR.2009.5466315
Filename
5466315
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