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    Felizberta Lo Padilla Tong School of Social SciencesIp Ying To Lee Yu Yee School of Humanities and LanguagesRita Tong Liu School of Business and Hospitality ManagementS.K. Yee School of Health SciencesYam Pak Charitable Foundation School of Computing and Information Sciences
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  4. Underwater image color correction based on surface reflectance statistics
 
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Underwater image color correction based on surface reflectance statistics

Author(s)
Liu, Hui  
Author(s)
Chau, L.-P.
Date Issued
2015
Publisher
IEEE
Related Publication(s)
2015 Asia-Pacific Signal and Information Processing Association Annual Summit and Conference (APSIPA ASC) Proceedings
Start page
996
End page
999
Abstract
Underwater image processing has attracted much interest during the past decades. Most of the underwater images suffer from the problems of backscattering and color distortion. In this paper, we focus on solving the problem of color distortion. Due to the light attenuation, which is caused by absorption and scattering, different colors of light will disappear gradually with the increase of water depth according to their wavelengths. The blue color has the shortest wavelength, so it can reach the largest depth, which results in the bluish tone of the underwater images. Our main contribution is that we proposed a new color correction scheme based on a local surface statistical prior. Our work mainly contains two steps. Firstly, we segment the underwater image into several non-overlapped blocks. Secondly, for each block, we estimate its illuminant based on the image formation model and the local surface statistical prior. By dividing the image block by its illuminant, the true reflectance can be obtained. Our experimental results demonstrate that our proposed method can achieve comparable or even better results than some state of the art approaches.
URI
https://repository.sfu.edu.hk/handle/sfu/4112
DOI
10.1109/APSIPA.2015.7415421
SFU Affiliated Publication
No
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