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Mixed Noise Removal Algorithm Combining Adaptive Directional Weighted Mean Filter and Improved Adaptive Anisotropic Diffusion Model

机译:自适应方向加权均值滤波与改进的各向异性扩散模型相结合的混合噪声消除算法

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A mixed noise removal algorithm combining adaptive directional weighted mean filter and improved adaptive anisotropic diffusion model is proposed. Firstly, a noise classification method is introduced to divide all pixels into two types as the pixels corrupted by impulse noise and the pixels corrupted by Gaussian noise. Then an adaptive directional weighted mean filter is developed to remove impulse noise, which can adaptively select the optimal direction template from twelve direction templates and replace the gray level of each impulse noise corrupted pixel by the weighted mean gray level of pixels on the optimal direction template. Finally, an improved adaptive anisotropic diffusion model is developed to remove Gaussian noise in the initial denoised image, which can finely classify image features as smooth regions, edges, corners, and isolated noises by characteristic parameters and variance parameter and conduct adaptive diffusion for different image features by designing reasonable eigenvalues of diffusion tensor. A large number of experimental results show that the proposed algorithm outperforms many existing main mixed noise removal methods in terms of image denoising and detail preservation.
机译:提出了一种结合自适应方向加权均值滤波器和改进的自适应各向异性扩散模型的混合噪声去除算法。首先,引入了噪声分类方法,将所有像素分为两种类型:脉冲噪声破坏的像素和高斯噪声破坏的像素。然后,开发了自适应方向加权均值滤波器,以去除脉冲噪声,可以从十二个方向模板中自适应选择最佳方向模板,并用最佳方向模板上像素的加权平均灰度级替换每个脉冲噪声损坏像素的灰度级。 。最后,开发了一种改进的自适应各向异性扩散模型来去除初始去噪图像中的高斯噪声,该噪声模型可以通过特征参数和方差参数将图像特征细分为平滑区域,边缘,角和孤立噪声,并对不同图像进行自适应扩散通过设计合理的扩散张量特征值来确定特征。大量实验结果表明,该算法在图像去噪和细节保留方面优于许多现有的主要混合噪声去除方法。

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