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Image Denoising method based on NSCT bivariate model and Variational Bayes threshold estimation

机译:基于NSCT二元模型和变分贝叶斯阈值估计的图像去噪方法

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摘要

In order to reduce the Gaussian noise introduced during image generation, this paper presents an image denoising algorithm based on variational Bayes (V-Bayes) estimation and nonsubsampled contourlet transform (NSCT) bivariate model. First, the proposed algorithm uses the NSCT's advantages of translation-invariant and multidirection-selectivity, exploits the intra-scale and inter-scale correlations of NSCT coefficients. Then, the corresponding nonlinear bivariate threshold function of the model is deduced by using V-Bayes estimation theory. Finally, the noise-reduced coefficients are inverse-transformed by NSCT to obtain denoised image. The simulation results show that the denoised image has obvious improvement in subjective visual effects and performance indicators, and effectively preserves the details and texture information in the original image.
机译:为了减少图像生成过程中引入的高斯噪声,本文提出了一种基于变分贝叶斯(V-Bayes)估计和非下采样轮廓波变换(NSCT)双变量模型的图像去噪算法。首先,该算法利用了NSCT平移不变和多方向选择性的优势,利用了NSCT系数的尺度内和尺度间相关性。然后,利用V-贝叶斯估计理论推导了模型的相应非线性二元阈值函数。最后,通过NSCT对降噪后的系数进行逆变换,得到降噪后的图像。仿真结果表明,去噪后的图像在主观视觉效果和性能指标上有明显改善,并有效地保留了原始图像的细节和纹理信息。

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