DocumentCode :
2279857
Title :
Underwater image denoising using adaptive wavelet subband thresholding
Author :
Prabhakar, C.J. ; Kumar, P.U.P.
Author_Institution :
Comput. Sci. Dept., Kuvempu Univ., Shankargatta, India
fYear :
2010
fDate :
15-17 Dec. 2010
Firstpage :
322
Lastpage :
327
Abstract :
Recently, image denoising using the wavelet transform has been attracting much attention. Wavelet based approach provides a particularly useful method for image denoising when the preservation of image features in the scene is of importance. In this paper, we propose a novel denoising method for removing additive noise present in the underwater images. In addition to scattering and absorption effects, macroscopic floating particles producing images of the size of a pixel can be present as well due to sand raised by the motion of a diver, or small plankton particles. These particles are part of the scene, but cause generally unwanted signal. We see them as an additive noise. The problems it causes in feature extraction. In the proposed denoising method, first we use homomorphic filtering for correcting non uniform illumination, then we apply anisotropic filtering for smoothing. After smoothing, we apply adaptive wavelet subband thresholding with Modified Bayes-Shrink function. We compared and evaluated the proposed denoising method based on the Peak Signal to Noise Ratio (PSNR). The experimental result shows that the proposed method yields superior result for underwater noisy images compared to other denoising techniques.
Keywords :
feature extraction; image denoising; image enhancement; image resolution; lighting; smoothing methods; wavelet transforms; absorption; adaptive wavelet subband thresholding; anisotropic filtering; feature extraction; homomorphic filtering; image features; image pixels; macroscopic floating particles; modified BayesShrink function; nonuniform illumination; peak signal to noise ratio; plankton particles; scattering; smoothing method; underwater image denoising; unwanted signal; Filtering; Image color analysis; Lighting; Noise; Noise reduction; Wavelet transforms; Adaptive Wavelet subband thresholding; Gaussian noise; Image denoising; Soft thresholding; underwater images;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Signal and Image Processing (ICSIP), 2010 International Conference on
Conference_Location :
Chennai
Print_ISBN :
978-1-4244-8595-6
Type :
conf
DOI :
10.1109/ICSIP.2010.5697491
Filename :
5697491
Link To Document :
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