An improved non-local means algorithm for CT image denoising

被引:0
作者
Huihua Kong
Wenbo Gao
Xiaoshuang Du
Yunxia Di
机构
[1] North University of China,School of Mathematics
[2] North University of China,Shanxi Key Laboratory of Signal Capturing and Processing
来源
Multimedia Systems | 2024年 / 30卷
关键词
CT image; Non-local means; Image block; Gradient similarity; Laplacian of Gaussian operator;
D O I
暂无
中图分类号
学科分类号
摘要
The non-local means (NLM) algorithm is a classical image denoising algorithm. However, the denoising effect of the NLM algorithm is easily affected by the noise level of neighboring pixels, which leads to poor denoising effect for high noise level image. In this paper, an improved NLM (I-NLM) denoising algorithm is proposed, which can extract the gradient information of the image more accurately by fusing the Laplacian of Gaussian (LOG) operator. At the same time, the algorithm combines the real domain information and the gradient information of the image to calculate the weight of the similarity between the image blocks. Experimental results show that compared with the traditional NLM algorithm, the proposed I-NLM algorithm can effectively preserve the edge of the image while suppressing the noise, and recover the CT images with high peak signal-to-noise ratio (PSNR) and structural similarity index measure (SSIM).
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