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基于高斯平滑压缩感知分数阶全变分算法的图像重构
引用本文:覃亚丽,梅济才,任宏亮,胡映天,常丽萍.基于高斯平滑压缩感知分数阶全变分算法的图像重构[J].电子与信息学报,2021,43(7):2105-2112.
作者姓名:覃亚丽  梅济才  任宏亮  胡映天  常丽萍
作者单位:浙江工业大学信息工程学院 杭州 310014
基金项目:国家自然科学基金 (61675184, 61275124);浙江省自然科学基金(LY18F010023)
摘    要:

关 键 词:图像重构    压缩感知    全变分    分数阶微分    高斯平滑
收稿时间:2020-05-12

Image Reconstruction Based on Gaussian Smooth Compressed Sensing Fractional Order Total Variation Algorithm
Yali QIN,Jicai MEI,Hongliang REN,Yingtian HU,Liping CHANG.Image Reconstruction Based on Gaussian Smooth Compressed Sensing Fractional Order Total Variation Algorithm[J].Journal of Electronics & Information Technology,2021,43(7):2105-2112.
Authors:Yali QIN  Jicai MEI  Hongliang REN  Yingtian HU  Liping CHANG
Affiliation:College of Information Engineering, Zhejiang University of Technology, Hangzhou 310014, China
Abstract:In view of the gradient effect caused by the gradient effect of the Total Variation (TV) algorithm and the environmental noise in the single pixel imaging system, an image reconstruction based on the Gaussian Smooth compressed sensing Fractional Order Total Variation algorithm (FOTVGS) is proposed. Fractional differential loss of low-frequency components of the image increases the high-frequency components of the image to achieve the purpose of enhancing image details. The Gaussian smoothing filter operator updates the Lagrangian gradient operator to filter out the additive white Gaussian noise caused by the differential operator. Simulation results show that, compared with other four similar algorithms, the algorithm can achieve the maximum Peak Signal-to-Noise Ratio (PSNR) and Structural SIMilarity(SSIM) at the same sampling rate and noise level. When the sampling rate is 0.2, compared with the Fractional Order Total Variation (FOTV) algorithm, the maximum PSNR and SSIM increase by 1.39 dB (0.035) and 3.91 dB (0.098) respectively. It can be proved that this algorithm can improve the reconstruction quality of the image in the absence of noise and noise, especially in the case of noise, the quality of image reconstruction is greatly improved. The proposed algorithm provides a feasible solution for image reconstruction of noise caused by environment in single-pixel imaging and other computing imaging system.
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