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Double Transformed Tubal Nuclear Norm Minimization for Tensor Completion
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作者 TIAN Jialue ZHU Yulian LIU Jiahui 《Transactions of Nanjing University of Aeronautics and Astronautics》 EI CSCD 2022年第S01期166-174,共9页
Non-convex methods play a critical role in low-rank tensor completion for their approximation to tensor rank is tighter than that of convex methods.But they usually cost much more time for calculating singular values ... Non-convex methods play a critical role in low-rank tensor completion for their approximation to tensor rank is tighter than that of convex methods.But they usually cost much more time for calculating singular values of large tensors.In this paper,we propose a double transformed tubal nuclear norm(DTTNN)to replace the rank norm penalty in low rank tensor completion(LRTC)tasks.DTTNN turns the original non-convex penalty of a large tensor into two convex penalties of much smaller tensors,and it is shown to be an equivalent transformation.Therefore,DTTNN could take advantage of non-convex envelopes while saving time.Experimental results on color image and video inpainting tasks verify the effectiveness of DTTNN compared with state-of-the-art methods. 展开更多
关键词 double transformed tubal nuclear norm low tubal-rank non-convex optimization tensor factorization tensor completion
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基于非凸加权L_p范数稀疏误差约束的图像去噪算法 被引量:1
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作者 徐久成 王楠 +1 位作者 王煜尧 徐战威 《智能系统学报》 CSCD 北大核心 2019年第3期500-507,共8页
图像去噪过程中由于噪声的影响,无法学习到准确的先验知识,因此难以获取较优的稀疏系数。针对该问题,本文提出一种基于非凸加权 lp范数稀疏误差约束的图像去噪算法。该算法将系数求解过程分解为两个子问题,采用广义软阈值算法求解 lp范... 图像去噪过程中由于噪声的影响,无法学习到准确的先验知识,因此难以获取较优的稀疏系数。针对该问题,本文提出一种基于非凸加权 lp范数稀疏误差约束的图像去噪算法。该算法将系数求解过程分解为两个子问题,采用广义软阈值算法求解 lp范数中的稀疏系数,再利用代理算法求解稀疏误差约束中的稀疏系数,根据二者的均值来获取更具鲁棒性的稀疏系数。与当前几种典型的算法进行对比分析,实验结果表明:本文算法不仅具有更高的峰值信噪比(PSNR),而且在运行时间上具有更高的效率,同时在视觉角度上产生了更好的视觉感受。 展开更多
关键词 图像去噪 稀疏表示 稀疏系数 先验知识 L1范数 非凸加权 LP范数 稀疏误差约束 峰值信噪比
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