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超分辨率人脸图像重构识别
引用本文:孙志远,孙亚南,吴小俊. 超分辨率人脸图像重构识别[J]. 平顶山工学院学报, 2011, 20(4)
作者姓名:孙志远  孙亚南  吴小俊
作者单位:1. 平顶山学院网络计算中心,河南平顶山,467000
2. 江南大学物联网工程学院,江苏无锡,214122
摘    要:为了解决单幅低分辨率人脸图像重构问题,提出了基于线性物体类理论重构超分辨率人脸图像的新方法。首先利用ICA和PCA提取不同分辨率人脸的特征子空间,然后利用通过训练得到的分辨率转换矩阵重构其相对应的超分辨率人脸图像,实验表明该算法与传统的算法相比重构出的人脸图像质量和识别率都有了很大的提高。

关 键 词:线性物体类理论  独立成分分析(ICA)  主成分分析(PCA)  

Reconstruction and recognition of super-resolution face images
SUN Zhi-Yuan,SUN Ya-nan,WU Xiao-Jun. Reconstruction and recognition of super-resolution face images[J]. Journal of Pingdingshan Institute of Technology, 2011, 20(4)
Authors:SUN Zhi-Yuan  SUN Ya-nan  WU Xiao-Jun
Affiliation:SUN Zhi-Yuan1,SUN Ya-nan1,WU Xiao-Jun2(1.Network computing center,Pingdingshan University,Pingdingshan 467000,China,2.School of information technology,Jiangnan University,Wuxi 214122,China)
Abstract:A new super-resolution face image reconstruction method based on linear object-class theory is proposed to deal with the problem of low-resolution face images.First,the feature subspaces are formed from different resolution images using ICA and PCA.Then the low-resolution image is transformed into its corresponding super-resolution face image using the transformation matrix predetermined by learning.Experimental tests showed that both the reconstruction quality and the recognition rate are improved greatly ...
Keywords:linear object-class theory  ICA  PCA  
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