Alternatively Constrained Dictionary Learning for Image Superresolution
Lu, Xiaoqiang; Yuan, Yuan; Yan, Pingkun
刊名ieee transactions on cybernetics
2014-03-01
卷号44期号:3页码:366-377
关键词Image superresolution manifold learning non-local self-similarity two-stage dictionary training (TSDT)
ISSN号2168-2267
英文摘要dictionaries are crucial in sparse coding-based algorithms for image superresolution. sparse coding is a typical unsupervised learning method to study the relationship between the patches of high-and low-resolution images. however, most of the sparse coding methods for image superresolution fail to simultaneously consider the geometrical structure of the dictionary and the corresponding coefficients, which may result in noticeable superresolution reconstruction artifacts. in other words, when a low-resolution image and its corresponding high-resolution image are represented in their feature spaces, the two sets of dictionaries and the obtained coefficients have intrinsic links, which has not yet been well studied. motivated by the development on nonlocal self-similarity and manifold learning, a novel sparse coding method is reported to preserve the geometrical structure of the dictionary and the sparse coefficients of the data. moreover, the proposed method can preserve the incoherence of dictionary entries and provide the sparse coefficients and learned dictionary from a new perspective, which have both reconstruction and discrimination properties to enhance the learning performance. furthermore, to utilize the model of the proposed method more effectively for single-image superresolution, this paper also proposes a novel dictionarypair learning method, which is named as two-stage dictionary training. extensive experiments are carried out on a large set of images comparing with other popular algorithms for the same purpose, and the results clearly demonstrate the effectiveness of the proposed sparse representation model and the corresponding dictionary learning algorithm.
WOS标题词science & technology ; technology
类目[WOS]computer science, artificial intelligence ; computer science, cybernetics
研究领域[WOS]computer science
关键词[WOS]interpolation ; features
收录类别SCI ; EI
语种英语
WOS记录号WOS:000331906100006
公开日期2015-03-18
内容类型期刊论文
源URL[http://ir.opt.ac.cn/handle/181661/22358]  
专题西安光学精密机械研究所_光学影像学习与分析中心
作者单位Chinese Acad Sci, Xian Inst Opt & Precis Mech, Ctr Opt Imagery Anal & Learning, State Key Lab Transient Opt & Photon, Xian 710119, Peoples R China
推荐引用方式
GB/T 7714
Lu, Xiaoqiang,Yuan, Yuan,Yan, Pingkun. Alternatively Constrained Dictionary Learning for Image Superresolution[J]. ieee transactions on cybernetics,2014,44(3):366-377.
APA Lu, Xiaoqiang,Yuan, Yuan,&Yan, Pingkun.(2014).Alternatively Constrained Dictionary Learning for Image Superresolution.ieee transactions on cybernetics,44(3),366-377.
MLA Lu, Xiaoqiang,et al."Alternatively Constrained Dictionary Learning for Image Superresolution".ieee transactions on cybernetics 44.3(2014):366-377.
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