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首页> 外文期刊>IEEE Transactions on Consumer Electronics >Block-based noise estimation using adaptive Gaussian filtering
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Block-based noise estimation using adaptive Gaussian filtering

机译:使用自适应高斯滤波的基于块的噪声估计

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摘要

This paper proposes a fast noise estimation algorithm using a Gaussian filter. It is based on block-based noise estimation, in which an input image is assumed to be contaminated by the additive white Gaussian noise and a filtering process is performed by an adaptive Gaussian filter. Coefficients of a Gaussian filter are selected as functions of the standard deviation of the Gaussian noise that is estimated from an input noisy image. For estimation of the amount of noise (i.e., standard deviation of the Gaussian noise), we split an image into a number of blocks and select smooth blocks that are classified by the standard deviation of intensity of a block, where the standard deviation is computed from the difference of the selected block images between the noisy input image and its filtered image. In the experiments, the performance of the proposed algorithm is compared with that of the three conventional (block-based and filtering-based) noise estimation methods. Experiments with several still images show the effectiveness of the proposed algorithm. The proposed noise estimation algorithm can be efficiently applied to noise reduction in commercial image - or video-based applications such as digital cameras and digital television (DTV) for its performance and simplicity.
机译:本文提出了一种使用高斯滤波器的快速噪声估计算法。它基于基于块的噪声估计,其中假定输入图像被加性高斯白噪声污染,并且自适应高斯滤波器执行滤波处理。选择高斯滤波器的系数作为根据输入噪声图像估计的高斯噪声标准偏差的函数。为了估计噪声量(即高斯噪声的标准偏差),我们将图像划分为多个块,然后选择按块强度的标准偏差分类的平滑块,其中计算标准差噪声输入图像与其滤波后的图像之间所选块图像的差异。在实验中,将所提算法的性能与三种常规(基于块和基于滤波的)噪声估计方法的性能进行了比较。通过几个静止图像的实验证明了该算法的有效性。所提出的噪声估计算法可以有效地应用于商业图像或基于视频的应用(例如,数码相机和数字电视(DTV))中的降噪,以实现其性能和简便性。

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