综合分析噪声估计策略对图像噪声伪影抑制性能的影响

Angus Leigh, A. Wong, David A Clausi, P. Fieguth
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引用次数: 14

摘要

本文研究了采用不同的噪声估计策略对噪声伪影抑制技术在实现高图像质量中的性能的影响。在进行噪声伪影抑制时,大多数关于该主题的文献倾向于使用噪声图像的真实噪声电平。然而,这种方法并不能反映这些技术如何在实际情况下使用,其中真实的噪声水平是未知的,这在大多数图像和视频处理应用中是常见的。因此,在实际情况下,必须首先估计噪声水平,然后才能使用估计的噪声水平应用噪声伪影抑制技术。通过对各种具有不同特征的图像进行经验测试,综合分析了不同的噪声估计策略,发现MAD小波噪声估计技术是所有流行的噪声伪影抑制技术(BM3D,双边,Neigh收缩,BLS-GSM和非局部方法)的总体首选噪声估计技术。此外,BM3D噪声伪影抑制技术与MAD小波噪声估计技术相结合,在噪声水平未知且必须估计的情况下,在实现高图像质量方面提供了最佳性能。这项研究的结果是明确的建议,可以在实践中使用,当抑制数字图像和视频中显示的噪声伪影。
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Comprehensive Analysis on the Effects of Noise Estimation Strategies on Image Noise Artifact Suppression Performance
In this paper, the effects of employing different noise estimation strategies on the performance of noise artifact suppression techniques in achieving high image quality has been investigated. Most literature on the subject tends to use the true noise level of the noisy image when performing noise artifact suppression. However, this approach does not reflect how such techniques would be used in practical situations where the true noise level is unknown, which is common in most image and video processing applications. Therefore, in practical situations, the noise level must first be estimated before a noise artifact suppression technique can be applied using the estimated noise level. Through a comprehensive analysis of different noise estimation strategies using empirical testing on a variety of images with different characteristics, the MAD wavelet noise estimation technique was found to be the overall preferred noise estimation technique for all popular noise artifact suppression techniques investigated (BM3D, bilateral, Neigh Shrink, BLS-GSM and non-local means). Furthermore, the BM3D noise artifact suppression technique, combined with the MAD wavelet noise estimation technique, was found to offer the best performance in achieving high image quality in situations where the noise level is unknown and must be estimated. The outcome of this research is clear recommendations that can be used in practise when suppressing noise artifacts exhibited in digital imagery and video.
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