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No-reference image noise estimation based on noise level accumulation

机译:基于噪声水平累积的无参考图像噪声估计

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摘要

In this paper, a method of no-reference image noise assessment is presented, which utilizes the estimated noise level accumulation (NLA) index value. The affine reconstruction model is applied after segmenting the noisy image into several patches. Boundary blur process is conducted to smooth the segmentation edges. For each image patch the mean value standing for brightness and the standard deviation value indicating the noise standard deviation are computed to give the noise samples estimation. The accurate image noise standard deviation is estimated by integrating NLA index value of several overlapped intervals combined with different visual weights. Experiment results are provided to demonstrate that the proposed method performs well for images with different contents over a large range of noise levels both monotonously and accurately. Comparisons against other conventional approaches are also carried out to exhibit the superior performance of the proposed algorithm.
机译:本文提出了一种无参考图像噪声评估的方法,该方法利用估计的噪声水平累积(NLA)指标值。仿射重建模型是在将噪声图像分割成几个小块之后应用的。进行边界模糊处理以平滑分割边缘。对于每个图像块,计算代表亮度的平均值和指示噪声标准偏差的标准偏差值,以给出噪声样本估计。通过将几个重叠间隔的NLA指标值与不同的视觉权重相结合,可以估算出准确的图像噪声标准偏差。实验结果表明,该方法在大范围的噪声水平下,单调准确地处理了不同内容的图像。还进行了与其他常规方法的比较,以展示所提出算法的优越性能。

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