Search Results for author: Wenjin Qin

Found 2 papers, 1 papers with code

Nonconvex Robust High-Order Tensor Completion Using Randomized Low-Rank Approximation

no code implementations19 May 2023 Wenjin Qin, Hailin Wang, Feng Zhang, Weijun Ma, Jianjun Wang, TingWen Huang

To the best of our knowledge, this is the first study to incorporate the randomized low-rank approximation into the RHTC problem.

Computational Efficiency

Guaranteed Tensor Recovery Fused Low-rankness and Smoothness

1 code implementation4 Feb 2023 Hailin Wang, Jiangjun Peng, Wenjin Qin, Jianjun Wang, Deyu Meng

Recent research have made significant progress by adopting two insightful tensor priors, i. e., global low-rankness (L) and local smoothness (S) across different tensor modes, which are always encoded as a sum of two separate regularization terms into the recovery models.

Denoising Image Inpainting +1

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