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Image denoising based on non-local means filter and its method noise thresholding - Springer

机译:基于非局部均值滤波器的图像去噪及其方法噪声阈值-Springer

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摘要

Non-local means filter uses all the possible self-predictions and self-similarities the image can provide to determine the pixel weights for filtering the noisy image, with the assumption that the image contains an extensive amount of self-similarity. As the pixels are highly correlated and the noise is typically independently and identically distributed, averaging of these pixels results in noise suppression thereby yielding a pixel that is similar to its original value. The non-local means filter removes the noise and cleans the edges without losing too many fine structure and details. But as the noise increases, the performance of non-local means filter deteriorates and the denoised image suffers from blurring and loss of image details. This is because the similar local patches used to find the pixel weights contains noisy pixels. In this paper, the blend of non-local means filter and its method noise thresholding using wavelets is proposed for better image denoising. The performance of the proposed method is compared with wavelet thresholding, bilateral filter, non-local means filter and multi-resolution bilateral filter. It is found that performance of proposed method is superior to wavelet thresholding, bilateral filter and non-local means filter and superior/akin to multi-resolution bilateral filter in terms of method noise, visual quality, PSNR and Image Quality Index.
机译:非局部均值滤波器使用图像可以提供的所有可能的自预测和自相似性来确定像素权重,以过滤噪声图像,并假设图像包含大量自相似性。由于像素高度相关,并且噪声通常独立且相同地分布,因此这些像素的平均会导致噪声抑制,从而产生与其原始值相似的像素。非局部均值滤镜可以消除噪声并清洁边缘,而不会丢失太多的精细结构和细节。但是,随着噪声的增加,非局部均值滤波器的性能会下降,并且去噪后的图像会遭受模糊和图像细节的损失。这是因为用于查找像素权重的相似局部色块包含有噪点的像素。本文提出了非局部均值滤波器的混合及其使用小波的噪声阈值化方法,以实现更好的图像降噪。将该方法的性能与小波阈值,双边滤波器,非局部均值滤波器和多分辨率双边滤波器进行了比较。结果表明,从方法噪声,视觉质量,PSNR和图像质量指标等方面来看,该方法的性能优于小波阈值,双边滤波器和非局部均值滤波器,优于/类似于多分辨率双边滤波器。

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