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Wavelet transform approach to adaptive image denoising and enhancement

机译:小波变换的自适应图像去噪与增强方法

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摘要

We describe a new method for noise suppression and edge enhancement in digital images based on the wavelet transform. At each resolution, the coefficients associated with noise are modeled by Gaussian random variables. Coefficients associated with edges are modeled by generalized Gaussian random variables, and a shrinkage function is assembled based on posterior probabilities. The shrinkage functions at consecutive scales are combined, and then applied to the wavelets coefficients. Finally, a diffusion equation is applied to the modified wavelet coefficients, to preserve edges that are not isolated. This method is adaptive to different amounts of noise in the image, and tends to be more robust to larger noise contamination than comparable techniques. Compared to a state of the art method that does not require the user to adjust parameters, as in our case, our method presents a superior performance.
机译:我们描述了一种基于小波变换的数字图像噪声抑制和边缘增强的新方法。在每种分辨率下,与噪声相关的系数均由高斯随机变量建模。与边缘相关的系数由广义高斯随机变量建模,并且基于后验概率组装收缩函数。合并连续尺度的收缩函数,然后将其应用于小波系数。最后,将扩散方程应用于修改后的小波系数,以保留未隔离的边缘。该方法适用于图像中不同数量的噪声,并且与可比技术相比,对于更大的噪声污染更趋于鲁棒。与在用户情况下不需要用户调整参数的现有方法相比,我们的方法具有更高的性能。

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