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A new HSI based filtering technique for impulse noise removal in images

机译:一种基于HSI的脉冲噪声删除在图像中的一种新的筛选技术

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We propose a new technique for impulse noise filtering that can remove the impulse noises from color as well as gray scale images. We operate on the HSI (Hue-Saturation-Intensity) color model. Our algorithm has three Phases. In first Phase, we take a window W of size N×N (say, 3×3) and form two groups: group of color and group of colorless pixels. We select the group that has the higher count of pixels in W. This allows us to remove the noise due to the colorless pixels from the color pixels and vice-versa. In the second Phase, if the selected group is a collection of colorless pixels then we find the median pixel based on increasing order of Intensity values and we call this as a candidate pixel. If the selected group is a set of color pixels then we will convert the 3-dimensional pixels into 1-dimension by first sub-grouping them based on their Hue values and selecting the sub-group that has maximum count. The pixels in this selected sub-group are homogeneous in nature with respect to the color and they vary by their Intensity and Saturation values. We find the average of the Intensity values and select the candidate pixel which is near this average. The Saturation, optionally, can be used to break the tie between the pixels that claim, at the same time, to be nearest the average. In third Phase, we decide whether the center pixel, in the current window W, is a noisy or noiseless based on an adaptive threshold which depends on the absolute difference of the Intensity, and/or Hue of the center pixel as that of the candidate pixel. If we find the center as noisy then the candidate will replace it or else we leave this center as intact. We have compared our method with the standard vector median filter (VMF), used for removing impulse noise from color images. The experiments tell us that our method gives better result with respect to the quality of the image (visual appearance), time for computation, and removal of noise. We present the results on a - ew color and gray scale images that are corrupted by salt and pepper noise to demonstrate the effectiveness of our approach.
机译:我们提出了一种用于脉冲噪声滤波的新技术,可以从颜色和灰度图像中移除脉冲噪声。我们在HSI(色调饱和度强度)颜色模型上运行。我们的算法有三个阶段。在第一阶段,我们占据尺寸n×n(比如,3×3),并形成两组:颜色组和无色像素组。我们选择W中具有较高的像素数的组。这允许我们除以颜色像素的无色像素引起的噪声,反之亦然。在第二阶段,如果所选组是无色像素的集合,则基于强度值的增加顺序找到中值像素,并且我们将其称为候选像素。如果所选组是一组颜色像素,则通过基于它们的色调值将其转换为1维度,并选择最大计数的子组。该所选子组中的像素在性质上具有相对于颜色同质,并且它们因其强度和饱和值而变化。我们发现强度值的平均值,并选择近距离此平均值的候选像素。可选地,饱和度可用于在索赔的同时接近平均值的像素之间的连接。在第三阶段中,我们确定当前窗口W中的中心像素是否是基于自适应阈值的噪声或无噪声,这取决于候选的强度的绝对差异和/或中心像素的绝对差异。像素。如果我们发现中心是嘈杂的,那么候选人将替换它,否则我们将这一中心完好无损。我们将我们的方法与标准矢量中值滤波器(VMF)进行了比较,用于从彩色图像中去除脉冲噪声。实验告诉我们,我们的方法对图像的质量(视觉外观),计算时间和噪声的去除提供了更好的结果。我们在盐和辣椒噪声损坏的A - EW颜色和灰度图像上提出了结果,以证明我们方法的有效性。

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