DocumentCode :
239734
Title :
A face hallucination method via HR-LLE coefficients constraint
Author :
Zhenli Wei ; Xiaoguang Li ; Li Zhuo
Author_Institution :
Signal & Inf. Process. Lab., Beijing Univ. of Technol., Beijing, China
fYear :
2014
fDate :
20-23 Aug. 2014
Firstpage :
136
Lastpage :
140
Abstract :
In most of the existing LLE (Local Linear Embedding) based face hallucination methods, a LR (Low Resolution) face image is usually represented as a linear combination of training samples. The combination coefficients of LR image are then directly used to estimate the HR (High Resolution) image. However, due to the one-to-many mapping from LR to HR face space, the LR-LLE coefficients are not as the same as the corresponding HR-LLE coefficients. Therefore, the estimated HR faces are different from the ground truth. A novel face super-resolution(SR, also named face hallucination) method is proposed in this paper, in which a HR-LLE coefficients constraint is introduced to predict the coefficients of HR image. It can effectively reduce the error of the estimated HR-LLE coefficients. Then, we develop a novel method to perform face hallucination based on both the global and local features. Experimental results show that the proposed method provides improved performance over the compared methods in terms of both the subjective and objective quality.
Keywords :
face recognition; feature extraction; image resolution; HR image; HR-LLE coefficients constraint; LR face image combination coefficients; LR-LLE coefficients; SR; face hallucination method; face superresolution; global features; high resolution image; local features; local linear embedding; low resolution face image; objective quality; one-to-many mapping; subjective quality; Digital signal processing; Face; Image reconstruction; Image resolution; Manifolds; Signal processing algorithms; Training; Face hallucination; HR-LLE coefficients constraint; local linear embedding; manifold learning;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Digital Signal Processing (DSP), 2014 19th International Conference on
Conference_Location :
Hong Kong
Type :
conf
DOI :
10.1109/ICDSP.2014.6900816
Filename :
6900816
Link To Document :
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