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BM3D-GT&AD: an improved BM3D denoising algorithm based on Gaussian threshold and angular distance

机译:BM3D-GT&AD:一种基于高斯阈值和角距离的改进BM3D去噪算法

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摘要

Block-matching and three-dimensional filtering (BM3D) is generally considered as a milestone for its outstanding performance in the area of image denoising. However, it still suffers from the loss of image detail due to the utilisation of hard thresholding on transform domain during the phase of the basic estimate. In the frequency domain, a large amount of image detail information is in high frequency, which tends to be mixed with noise. Since its low amplitude is below the threshold, some image detail is filtered out with the noise. To retain more details, this study proposes an improved BM3D. It adopts an adaptable threshold with the core of Gaussian function during hard thresholding, which can filter out more noise while retaining more high-frequency information. When grouping, the normalised angular distance is taken as a measure of similarity to relieve the interference of noise further and achieve a higher peak signal-to-noise ratio (PSNR). The experimental results show that under the background of Gaussian noise with standard deviation of 20-60, the PSNR of denoised images (with a large amount of detail), applied with the authors' improved algorithm, can be improved by $0.1 - 0.4 , {m dB}$0.1-0.4dB compared with original BM3D.
机译:块匹配和三维滤波(BM3D)因其在图像去噪领域的出色性能而被普遍视为里程碑。然而,由于在基本估计阶段期间在变换域上使用了硬阈值,因此仍然遭受图像细节损失。在频域中,大量的图像细节信息处于高频中,这容易与噪声混合。由于其低幅度低于阈值,因此一些图像细节会被噪声滤除。为了保留更多细节,本研究提出了一种改进的BM3D。它在硬阈值期间采用具有高斯函数核心的自适应阈值,可以滤除更多噪声,同时保留更多高频信息。分组时,将归一化的角距离作为相似性的度量,以进一步减轻噪声的干扰并获得更高的峰值信噪比(PSNR)。实验结果表明,在标准偏差为20-60的高斯噪声背景下,采用作者改进算法,去噪图像(细节量较大)的PSNR可以提高$ 0.1-0.4 , { rm dB}与原始BM3D相比,为$ 0.1-0.4dB。

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