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首页> 外文期刊>International Journal of Engineering and Technology >An Effective Adaptive Nonlinear Filter for Removing High Density Impulse Noises in Gray-Scale Images
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An Effective Adaptive Nonlinear Filter for Removing High Density Impulse Noises in Gray-Scale Images

机译:一种有效的自适应非线性滤波器,用于去除灰度图像中的高密度脉冲噪声

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Digital images are often distorted by Impulse noise during the process of analog-to-digital conversion, transmission and storage in the physical medias. This type of error certainly changes the properties of some of the pixels while some of the other pixels remain unchanged. In order to remove impulse noise and enhance the distorted image quality, we have tested the number of nonlinear filters and their limitations and we have proposed a new efficient adaptive nonlinear filtering algorithm. This method removes or effectively suppresses the impulse noises in the gray-scale images while preserving the image edges information and enhancing the image quality. The proposed method is a spatial domain approach and uses the 3?3 kernel window to filter the signal based on the correct selection of neighbourhood values to obtain the median per window. The method chosen in this work is based on a functional level 2n +1 window that makes the selection of the normal median easier, since the number of elements in the window is odd. The median so obtained is set as the efficient value for filtering. Suppose the median is an impulse, a more representative value is pursued from the neighbourhood values and used as the median value. The performance of the proposed efficient adaptive nonlinear filter has been evaluated using MATLAB, simulations on gray-scale digital images that have been subjected to high density of corruption with impulse noise as high as 90 %. The results reveal the effectiveness of our proposed algorithm when compared with existing vector, standard and adaptive median filtering algorithms.
机译:在物理介质进行模数转换,传输和存储的过程中,数字图像通常会因脉冲噪声而失真。这种类型的错误肯定会更改某些像素的属性,而其他一些像素则保持不变。为了消除脉冲噪声并提高失真的图像质量,我们测试了非线性滤波器的数量及其局限性,并提出了一种新的高效自适应非线性滤波算法。该方法在保留图像边缘信息并提高图像质量的同时,消除或有效地抑制了灰度图像中的脉冲噪声。所提出的方法是一种空间域方法,并使用3?3内核窗口基于邻域值的正确选择对信号进行滤波,以获得每个窗口的中位数。在这项工作中选择的方法基于2n +1功能级别的窗口,由于窗口中元素的数量是奇数,因此使正常中位数的选择更加容易。如此获得的中值被设置为滤波的有效值。假设中位数是一个脉冲,则从邻域值中寻求一个更具代表性的值并将其用作中值。所提出的高效自适应非线性滤波器的性能已使用MATLAB进行了评估,该仿真是在灰度数字图像上进行的,这些数字图像受到高密度的破坏,脉冲噪声高达90%。结果表明,与现有的矢量,标准和自适应中值滤波算法相比,该算法的有效性。

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