DocumentCode :
1887992
Title :
Evaluation of Mean, Gaussian and S&G aggregation windows in stereo correspondence under presence of noise
Author :
Calderon, Francisco ; Parra, Carlos ; Nino, Cesar
Author_Institution :
Grupo de Investig. en Sist. Inteligentes, Robot. y Percepcion Pontificia Univ. Javeriana, Bogota, Colombia
fYear :
2013
fDate :
11-13 Sept. 2013
Firstpage :
1
Lastpage :
5
Abstract :
Few topics in image processing have been as extensively studied as stereo correspondence, these algorithms can be divided into two categories, local and global, depending on how the processing is done in the image. A stereo correspondence algorithm is called local if operate on sections of the images and global this treatment is performed on the entire images. In local algorithms specifically, this aggregation window is used for smoothing volume pairing cost, so that a better match is performed in presence of fronto-parallel regions. This article presents a comparison between Mean, Gaussian and Savitzky-Golay aggregation windows in local algorithms, analyzing the noise in test images and how the selection of the aggregation window affects the performance of the stereo matching algorithm.
Keywords :
Gaussian processes; image denoising; image matching; smoothing methods; stereo image processing; Gaussian aggregation windows; S&G aggregation windows; Savitzky-Golay aggregation windows; fronto-parallel regions; global category; image processing; image segmentation; local algorithms; local category; mean; smoothing filter; stereo correspondence algorithm; stereo matching algorithm; test image noise; volume pairing cost smoothing; Cameras; Equations; Image coding; Mathematical model; Smoothing methods; Stereo vision; Transform coding; Mean Shift; Savitzky-Golay; Stereo; digital differentiators; image segmentation; smoothing filter;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Image, Signal Processing, and Artificial Vision (STSIVA), 2013 XVIII Symposium of
Conference_Location :
Bogota
Print_ISBN :
978-1-4799-1120-2
Type :
conf
DOI :
10.1109/STSIVA.2013.6644940
Filename :
6644940
Link To Document :
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