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An improved parabolic-hyperbolic anisotropic diffusion algorithm for image denoising

机译:一种改进的抛物线-双曲各向异性扩散算法

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Traditional noise reduction methods couldn't well achieve the trade-off between removing noise and preserving feature information, inevitably blurring the meaningful details. Focusing on this problem, in this paper, we proposed an improved anisotropic diffusion parabolic-hyperbolic PDE for image denoising. Based on viewing the image as an elastic sheet and a modified anisotropic diffusion, the proposed algorithm took the gray-level variance information into consideration. We applied the proposed approach to several real images contaminated by white Gaussian noise with different standard deviation. The comparative experimental results show that the improved algorithm is capable of removing noise without sacrificing the edges and fine details of the image and therefore obtains superior denoising performance.
机译:传统的降噪方法无法很好地实现消除噪声和保留特征信息之间的折衷,从而不可避免地模糊了有意义的细节。针对这一问题,本文提出了一种改进的各向异性扩散抛物线-双曲线PDE进行图像去噪。在将图像视为弹性片并修改了各向异性扩散的基础上,该算法考虑了灰度方差信息。我们将所提出的方法应用于几个由不同标准偏差的高斯白噪声污染的真实图像。对比实验结果表明,改进的算法能够在不牺牲图像边缘和精细细节的前提下去除噪声,从而获得了较好的去噪性能。

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