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A novel method for example-based face super-resolution

机译:一种基于实例的人脸超分辨率新方法

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Face super-resolution is the specific super-resolution problem based on the property of facial images, which reconstructs a high-resolution facial image from a low-resolution input. Based on the observation that faces are made up of several relatively independent parts such as eyes, noses and mouths, we propose an example-based face hallucination framework which includes correlation-constrained non-negative matrix factorization (CCNMF) algorithm and High-dimensional Coupled NMF (HCNMF) algorithm. Compared with existing approaches, the proposed CCNMF algorithm can generate global face more similar to the ground truth face by learning a parts-based and localized representation of facial images. Moreover, residue compensation by using HCNMF can learn the relation between high-resolution residue and low-resolution residue to better preserve lost high frequency details. Experimental results verify the effectiveness of our method. (Abstract)
机译:人脸超分辨率是基于人脸图像属性的特定超分辨率问题,它从低分辨率输入中重建高分辨率人脸图像。基于观察到的面部由眼睛,鼻子和嘴巴等相对独立的部分组成的情况,我们提出了一个基于示例的面部幻觉框架,其中包括相关约束的非负矩阵分解(CCNMF)算法和高维耦合NMF(HCNMF)算法。与现有方法相比,提出的CCNMF算法可以通过学习基于局部的局部人脸图像来生成与地面真实人脸更相似的全局人脸。此外,通过使用HCNMF进行残差补偿,可以了解高分辨率残差和低分辨率残差之间的关系,从而更好地保留丢失的高频细节。实验结果证明了该方法的有效性。 (抽象的)

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