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Efficient noise reduction in images using directional modified sigma filter

机译:使用定向修改的sigma滤波器有效降低图像中的噪声

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摘要

A noise reduction of images using a directional modified sigma filter is proposed. It is important that an image should include accurate values without noise for large-scale data processing of a cloud computing environment. A conventional sigma filter has been shown to be a good solution both in terms of filtering accuracy and computational complexity. However, the sigma filter does not preserve small edges well especially for the high level of additive noise. In this paper, we propose a new method using a modified sigma filter. In our proposed method, an input image is first decomposed into two components that have features of horizontal, vertical, and diagonal direction. Then two components are applied: high-pass filtering (HPF) and low-pass filtering (LPF). By applying the conventional sigma filter separately on each of them, an output image is reconstructed from the filtered components. Added noise is removed and our proposed method preserves the edges in the image. Comparative results from experiments show that the proposed algorithm achieves higher gains than the sigma filter and modified sigma filter, which are 2.6 dB PSNR on average and 0.5 dB PSNR, respectively. When relatively high levels of noise are added, the proposed algorithm shows better performance than the two conventional filters. The proposed method can be efficiently applied in digital cameras, digital TV, and smart phones.
机译:提出了使用定向修正西格玛滤波器的图像降噪。对于云计算环境的大规模数据处理,图像应包括准确的值且无噪声,这一点很重要。就滤波精度和计算复杂度而言,传统的sigma滤波器已被证明是一个很好的解决方案。但是,西格玛滤波器不能很好地保留小边缘,特别是对于高水平的附加噪声而言。在本文中,我们提出了一种使用改进的sigma滤波器的新方法。在我们提出的方法中,首先将输入图像分解为具有水平,垂直和对角线方向特征的两个分量。然后应用两个组件:高通滤波(HPF)和低通滤波(LPF)。通过将传统的sigma滤波器分别应用于每个sigma滤波器,可以从滤波后的分量中重建输出图像。消除了增加的噪点,并且我们提出的方法保留了图像中的边缘。实验的比较结果表明,该算法比sigma滤波器和改进的sigma滤波器具有更高的增益,分别为2.6 dB PSNR和0.5 dB PSNR。当添加相对较高水平的噪声时,所提出的算法显示出比两个常规滤波器更好的性能。所提出的方法可以有效地应用于数码相机,数字电视和智能手机中。

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