一种基于HR-LLE系数约束的人脸幻觉方法

Zhenli Wei, Xiaoguang Li, L. Zhuo
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引用次数: 0

摘要

在大多数现有的基于局部线性嵌入的人脸幻觉方法中,低分辨率人脸图像通常被表示为训练样本的线性组合。然后直接使用LR图像的组合系数来估计HR(高分辨率)图像。但是,由于LR到HR的面空间是一对多的映射关系,使得LR- lle系数与对应的HR- lle系数并不相同。因此,估计的人力资源面与实际情况不同。提出了一种新的人脸超分辨(SR,又称人脸幻觉)方法,该方法引入HR- lle系数约束来预测人脸图像的系数。它可以有效地减小估计的HR-LLE系数的误差。然后,我们开发了一种基于全局和局部特征的人脸幻觉新方法。实验结果表明,该方法在主观质量和客观质量方面都优于比较方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A face hallucination method via HR-LLE coefficients constraint
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.
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