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Successive difference detection based adaptive iterative median filter for image restoration

机译:基于连续差分检测的自适应迭代中值滤波器用于图像复原

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摘要

The paper proposes a universal noise removing filter capable of removing a mix of salt and pepper, random and Gaussian noise. In addition, the filter can also remove degradations like scratches, streaks, grids etc. that may corrupt images in real time. The algorithm exploits the fact that noise is a violation of spatial coherence of image intensities. In the detection phase, the corrupted and uncorrupted pixels are identified by computing the successive difference of the sorted pixels in the detection window. The correction phase uses the adaptive median filter that is iterated through the image until all the noise pixels are restored. The iteration with the window dimension not exceeding 5 x 5 ensures better preservation of image details. For an image that is corrupted with Salt and Pepper noise of density 60%, Random noise of density 20% and Gaussian noise of Standard Deviation 20, the image restored by this filter has a PSNR as high as 22 dB. The best feature of the proposed Successive Difference Detection Based Adaptive Iterative Median Filter (SDD-AIMF) is the graceful degradation in performance as the noise density increases, which is not the case with popular algorithms. The quantitative and qualitative results clearly prove that the proposed algorithm has better image restoration capabilities than many other popular techniques in literature.
机译:本文提出了一种通用噪声消除滤波器,该滤波器能够消除盐和胡椒粉,随机噪声和高斯噪声的混合。此外,滤镜还可以消除可能会实时损坏图像的降级效果,例如刮擦,条纹,网格等。该算法利用了以下事实:噪声违反了图像强度的空间相干性。在检测阶段,通过计算检测窗口中已排序像素的连续差异来识别损坏和未损坏的像素。校正阶段使用在图像中迭代的自适应中值滤波器,直到所有噪声像素都恢复为止。窗口尺寸不超过5 x 5的迭代可确保更好地保留图像细节。对于因浓度为60%的盐和胡椒噪声,浓度为20%的随机噪声和标准偏差20的高斯噪声而损坏的图像,通过此滤波器恢复的图像的PSNR高达22 dB。所提出的基于逐次差检测的自适应迭代中值滤波器(SDD-AIMF)的最大特点是随着噪声密度的增加,性能会适度下降,而流行算法却并非如此。定量和定性结果清楚地证明,与文献中许多其他流行技术相比,该算法具有更好的图像恢复能力。

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