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A New Image Denoising in Shiftable Complex Directional Pyramid Domain

机译:移位复方向金字塔域中的新图像降噪

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In this paper,we describe a method for removing noise from digital images,based on bilateral filter and Gaussian scale mixtures (GSM) in shiftable complex directional pyramid (PDTDFB) domain.Firstly,the noisy image is decomposed into different subbands of frequency and orientation responses using a PDTDFB transform.Secondly,the bilateral filter,which is a nonlinear filter that does spatial averaging without smoothing edges,is applied on the approximation subband.Finally,the distribution of detail subbands of PDTDFB coefficients is modeled with GSM,and the statistical model is then used to obtain the denoised detail coefficients from the noisy image decomposition by Bayes least squares estimator.Extensive experimental results demonstrate that our method can obtain better performances in terms of both subjective and objective evaluations than those state-of-the-art denoising techniques.Especially,the proposed method can preserve edges very well while removing noise.
机译:本文介绍了一种基于双边滤波器和高斯比例混合(GSM)在可移动复方向金字塔(PDTDFB)域中的数字图像去除噪声的方法。首先,将噪声图像分解为频率和方向的不同子带其次,在近似子带上应用双边滤波器,这是一个非线性的,不进行平滑处理的空间平均的非线性滤波器,被应用在近似子带上。最后,用GSM对PDTDFB系数的细节子带的分布进行建模,并进行统计。然后通过贝叶斯最小二乘估计器从噪声图像分解中获得模型的去噪细节系数。大量的实验结果表明,与那些最新的去噪方法相比,我们的方法在主观和客观评估方面都可以获得更好的性能。特别地,所提出的方法在去除噪声的同时可以很好地保留边缘。

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