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结合位置先验与稀疏表示的单帧人脸图像超分辨率算法
引用本文:马祥. 结合位置先验与稀疏表示的单帧人脸图像超分辨率算法[J]. 计算机应用, 2012, 32(5): 1300-1302
作者姓名:马祥
作者单位:1. 长安大学 信息工程学院,西安 7100642. 西安交通大学 电子与信息工程学院,西安 710049
基金项目:国家自然科学基金资助项目(61101215);中央高校基本科研业务费专项资金资助项目(CHD2011JC146);长安大学基础研究支持计划专项基金资助项目
摘    要:提出了一种结合位置先验与稀疏表示的人脸图像超分辨率算法,可对单帧输入的低分辨率人脸图像基于训练集进行超分辨率重建。利用压缩感知理论中的信号分解方法,〖BP(〗明确哪些方法更好〖BP)〗,将稀疏表示与人脸位置先验信息相结合,使用经过分类的超完备冗余字典,来分别稀疏逼近输入信号的块向量结构。利用最佳的K项原子,线性组合重建出高分辨率图像块。最后按照图像块最初在人脸的位置,将它们拼接为整体人脸。在CAS-PEAL-R1人脸图库上的实验结果表明,该算法使用相对较少的原子,就可以重建出质量较好的高分辨率人脸图像。

关 键 词:稀疏表示  压缩感知  超完备字典  位置先验  人脸图像  超分辨率  
收稿时间:2011-10-25
修稿时间:2011-12-08

Face hallucination based on position prior and sparse representation
MA Xiang. Face hallucination based on position prior and sparse representation[J]. Journal of Computer Applications, 2012, 32(5): 1300-1302
Authors:MA Xiang
Affiliation:1. School of Electronic and Information Engineering, Xi'an Jiaotong University, Xi'an Shaanxi 710049, China
2. School of Information Engineering, Chang'an University, Xi'an Shaanxi 710064, China
Abstract:A face hallucination method based on sparse representation and position prior was proposed,which can obtain the enlargement of a single low-resolution input.Some perspectives of compressed sensing were applied to the method.The high-and low-resolution over-complete atoms were classified according to different positions of face.The low-resolution face image inputs were approximated by the sparse linear combination of the over-complete atoms which were classified.The sparse coefficients were obtained to reconstruct the high-resolution data of certain position.According to their original positions,the generated patches were integrated into a global face.The experimental results illustrate that the proposed method can generate satisfying high-resolution face image using fewer atoms compared to other methods.
Keywords:sparse representation  compressed sensing  over-complete dictionary  position prior  face image  super-resolution
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