Literature DB >> 23047875

Nonlocal image restoration with bilateral variance estimation: a low-rank approach.

Weisheng Dong1, Guangming Shi, Xin Li.   

Abstract

Simultaneous sparse coding (SSC) or nonlocal image representation has shown great potential in various low-level vision tasks, leading to several state-of-the-art image restoration techniques, including BM3D and LSSC. However, it still lacks a physically plausible explanation about why SSC is a better model than conventional sparse coding for the class of natural images. Meanwhile, the problem of sparsity optimization, especially when tangled with dictionary learning, is computationally difficult to solve. In this paper, we take a low-rank approach toward SSC and provide a conceptually simple interpretation from a bilateral variance estimation perspective, namely that singular-value decomposition of similar packed patches can be viewed as pooling both local and nonlocal information for estimating signal variances. Such perspective inspires us to develop a new class of image restoration algorithms called spatially adaptive iterative singular-value thresholding (SAIST). For noise data, SAIST generalizes the celebrated BayesShrink from local to nonlocal models; for incomplete data, SAIST extends previous deterministic annealing-based solution to sparsity optimization through incorporating the idea of dictionary learning. In addition to conceptual simplicity and computational efficiency, SAIST has achieved highly competent (often better) objective performance compared to several state-of-the-art methods in image denoising and completion experiments. Our subjective quality results compare favorably with those obtained by existing techniques, especially at high noise levels and with a large amount of missing data.

Year:  2012        PMID: 23047875     DOI: 10.1109/TIP.2012.2221729

Source DB:  PubMed          Journal:  IEEE Trans Image Process        ISSN: 1057-7149            Impact factor:   10.856


  13 in total

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2.  Object-Oriented Hierarchy Radiation Consistency for Different Temporal and Different Sensor Images.

Authors:  Nan Su; Yiming Yan; Chunhui Zhao; Liguo Wang
Journal:  Sensors (Basel)       Date:  2018-02-25       Impact factor: 3.576

3.  A new development of non-local image denoising using fixed-point iteration for non-convex ℓp sparse optimization.

Authors:  Shuting Cai; Kun Liu; Ming Yang; Jianliang Tang; Xiaoming Xiong; Mingqing Xiao
Journal:  PLoS One       Date:  2018-12-12       Impact factor: 3.240

4.  Ensemble Dictionary Learning for Single Image Deblurring via Low-Rank Regularization.

Authors:  Jinyang Li; Zhijing Liu
Journal:  Sensors (Basel)       Date:  2019-03-06       Impact factor: 3.576

5.  Non-Local SVD Denoising of MRI Based on Sparse Representations.

Authors:  Nallig Leal; Eduardo Zurek; Esmeide Leal
Journal:  Sensors (Basel)       Date:  2020-03-10       Impact factor: 3.576

6.  Low-Rank and Sparse Recovery of Human Gait Data.

Authors:  Kaveh Kamali; Ali Akbar Akbari; Christian Desrosiers; Alireza Akbarzadeh; Martin J-D Otis; Johannes C Ayena
Journal:  Sensors (Basel)       Date:  2020-08-13       Impact factor: 3.576

7.  Defocus Blur Detection and Estimation from Imaging Sensors.

Authors:  Jinyang Li; Zhijing Liu; Yong Yao
Journal:  Sensors (Basel)       Date:  2018-04-08       Impact factor: 3.576

Review 8.  Brief review of image denoising techniques.

Authors:  Linwei Fan; Fan Zhang; Hui Fan; Caiming Zhang
Journal:  Vis Comput Ind Biomed Art       Date:  2019-07-08

9.  A Hybrid Sparse Representation Model for Image Restoration.

Authors:  Caiyue Zhou; Yanfen Kong; Chuanyong Zhang; Lin Sun; Dongmei Wu; Chongbo Zhou
Journal:  Sensors (Basel)       Date:  2022-01-11       Impact factor: 3.576

10.  Synthetic Aperture Radar Image Despeckling Based on Multi-Weighted Sparse Coding.

Authors:  Shujun Liu; Ningjie Pu; Jianxin Cao; Kui Zhang
Journal:  Entropy (Basel)       Date:  2022-01-07       Impact factor: 2.524

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