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首页> 外文期刊>Circuits, systems, and signal processing >Dual-Tree Complex Wavelet Coefficient Magnitude Modeling Using Scale Mixtures of Rayleigh Distribution for Image Denoising
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Dual-Tree Complex Wavelet Coefficient Magnitude Modeling Using Scale Mixtures of Rayleigh Distribution for Image Denoising

机译:双树复杂小波系数幅度建模使用瑞利分布尺度混合物进行图像去噪

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摘要

Denoising an image, while retaining the important features of the image, has been a fundamental problem in image processing. Dual-tree complex wavelet transform is a recently created transform that offers both near shift invariance and improved directional selectivity properties. This transform has been used in many techniques, including denoising. However, these techniques have used the real and imaginary components of the complex-valued sub-band coefficients separately. This paper proposes the use of coefficient magnitudes to provide an improvement in image denoising. Our proposed algorithm is based on the maximum a posteriori estimator, wherein the heavy-tailed scale mixtures of bivariate Rayleigh distribution are considered as the noise-free wavelet coefficient magnitudes' prior distribution. Also, in our work, the necessary parameters of the bivariate distributions are estimated in a locally adaptive way to improve the denoising results via using the correlation between the amplitudes of neighbor coefficients. Simulation results delineate the performance of the proposed algorithm in both MSSIM and PSNR metrics.
机译:去噪图像,同时保留图像的重要特征,这是图像处理的基本问题。双树复杂小波变换是最近创建的转换,提供近换档不变性和改进的定向选择性属性。这种变换已经用于许多技术,包括去噪。然而,这些技术已经单独使用复值子带系数的真实和虚部。本文提出了使用系数幅度来提供图像去噪的改善。我们所提出的算法基于最大后验估计器,其中二偏心分布的重尾标度混合物被认为是无噪声小波系数幅度的先前分布。此外,在我们的作品中,以局部自适应方式估计二棱锥分布的必要参数,以通过使用邻居系数的幅度之间的相关性来改善去噪结果。仿真结果描绘了MSSIM和PSNR指标中所提出的算法的性能。

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