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Image denoising using optimally weighted bilateral filters: A sure and fast approach

机译:使用最佳加权双边滤波器进行图像降噪:一种可靠而快速的方法

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摘要

The bilateral filter is known to be quite effective in denoising images corrupted with small dosages of additive Gaussian noise. The denoising performance of the filter, however, is known to degrade quickly with the increase in noise level. Several adaptations of the filter have been proposed in the literature to address this shortcoming, but often at a substantial computational overhead. In this paper, we report a simple pre-processing step that can substantially improve the denoising performance of the bilateral filter, at almost no additional cost. The modified filter is designed to be robust at large noise levels, and often tends to perform poorly below a certain noise threshold. To get the best of the original and the modified filter, we propose to combine them in a weighted fashion, where the weights are chosen to minimize (a surrogate of) the oracle mean-squared-error (MSE). The optimally-weighted filter is thus guaranteed to perform better than either of the component filters in terms of the MSE, at all noise levels. We also provide a fast algorithm for the weighted filtering. Visual and quantitative denoising results on standard test images are reported which demonstrate that the improvement over the original filter is significant both visually and in terms of PSNR. Moreover, the denoising performance of the optimally-weighted bilateral filter is competitive with the computation-intensive non-local means filter.
机译:众所周知,双边滤波器在消除因小剂量加性高斯噪声而损坏的图像方面非常有效。然而,众所周知,随着噪声水平的提高,滤波器的降噪性能会迅速下降。在文献中已经提出了滤波器的几种改型来解决该缺点,但是通常以相当大的计算开销。在本文中,我们报告了一个简单的预处理步骤,该步骤可以实质上提高双边滤波器的降噪性能,而几乎无需增加任何成本。修改后的滤波器被设计为在较大的噪声水平下具有鲁棒性,并且在低于某个噪声阈值时,往往表现较差。为了最好地利用原始滤波器和修改后的滤波器,我们建议将它们以加权方式进行组合,其中选择权重以最小化(替代)oracle均方误差(MSE)。因此,就所有噪声水平而言,就MSE而言,可以保证最佳加权滤波器的性能优于任何一个分量滤波器。我们还为加权过滤提供了一种快速算法。报告了标准测试图像上的视觉和定量降噪结果,这些结果表明,在视觉上和PSNR方面,对原始滤镜的改进都很明显。而且,最佳加权双边滤波器的去噪性能与计算量大的非局部均值滤波器相比具有竞争力。

著录项

  • 作者

    Chaudhury K N; K Rithwik;

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  • 年度 2015
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  • 原文格式 PDF
  • 正文语种 en
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