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An adaptive minimum-maximum value-based weighted median filter for removing high density salt and pepper noise in medical images

机译:用于去除医学图像中的高密度盐和辣椒噪声的自适应最小值最大值的加权中值滤波器

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摘要

This paper presents an adaptive minimum-maximum value-based weighted median (AMMWM) filter that effectively restores noisy pixel in medical images at high noise density. The proposed filter computes two highly correlated groups of noise-free pixels using minimum and maximum value of the current window. Further, weighted medians of these groups determine the estimated value of candidate noisy pixel. If the current window fails to provide any noise-free pixels, its size is increased by one. The maximum size of window considered is 7 x 7 to minimise blurring. The proposed AMMWM filter is evaluated on various medical images where it provides higher quality metrics while preserving image features even at higher noise density. The simulation results using X-ray images show on an average 0.3 dB and 3.56 dB higher value of PSNR for wide (10%-90%) and very high (91%-98%) noise density ranges respectively.
机译:本文提出了一种自适应最小值 - 最大值的加权中值(AMMWM)滤波器,可在高噪声密度下有效地恢复医学图像中的噪声像素。所提出的滤波器使用当前窗口的最小值和最大值计算两个高度相关的无噪声像素组。此外,这些组的加权中值确定候选噪声像素的估计值。如果当前窗口未能提供任何无噪声像素,则其大小增加一个。所考虑的窗口的最大大小为7 x 7,以最小化模糊。所提出的AMMWM滤波器在各种医学图像上进行评估,其中它提供更高质量的指标,同时甚至处于噪声密度较高的图像特征。使用X射线图像的仿真结果平均显示为宽(10%-90%)和非常高(91%-98%)噪声密度范围的PSNR的平均0.3dB和3.56dB。

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