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首页> 外文期刊>Research journal of applied science, engineering and technology >An Image Denoising Framework with Multi-resolution Bilateral Filtering and Normal Shrink Approach
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An Image Denoising Framework with Multi-resolution Bilateral Filtering and Normal Shrink Approach

机译:具有多分辨率双边滤波和法线收缩法的图像去噪框架

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In this study, an image denoising algorithm is presented, which takes into account wavelet thresholding and bilateral filtering in transform domain. The proposed algorithm gives an extension of the bilateral filter i.e., multiresolution bilateral filter, in which bilateral filtering is applied to the approximation sub bands and normal shrink is used for thresholding the wavelet coefficients of the detail sub bands of an image decomposed using a wavelet filter bank up to 2-level of decomposition. The algorithm is tested against ultrasound image of gall bladder corrupted by different types of noise namely, gaussian, speckle, poisson and impulse. The result shows that with increase in decomposition levels the proposed method is effective in eliminating noise but gives overly smoothed image. The algorithm outperforms with speckle and poisson noise at 2- level decomposition in terms of PSNR.
机译:在这项研究中,提出了一种图像去噪算法,其中考虑了小波阈值和变换域中的双边滤波。所提出的算法给出了双边滤波器的扩展,即多分辨率双边滤波器,其中将双边滤波应用于近似子带,并且正常收缩用于阈值化使用小波滤波器分解的图像的细节子带的小波系数。库最多分解2级。该算法针对胆囊的超声图像进行了测试,胆囊的超声图像被高斯噪声,斑点噪声,泊松噪声和冲动噪声所破坏。结果表明,随着分解水平的提高,该方法可有效消除噪声,但图像过于平滑。就PSNR而言,该算法在2级分解中的表现优于斑点和泊松噪声。

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