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Color Face Hallucination Using Neighbor Locality Representation and Inter-Channel Correlation

机译:使用邻居局部表现和通道间相关性的彩色面部幻觉

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摘要

Recently, the locality-constrained linear coding (LLC) based techniques have been widely exploited for face hallucination. However, for the color face image, the conventional LLC model ignores the neighbor self-similarity prior as well as the relevance of different color channels, resulting in unsatisfactory representations. This paper presents a novel Neighbor locality Representation and inter-Channel Correlation (NRCC) model for color face hallucination. Compared with conventional LLC, NRCC makes full use of neighbor self-similarity prior and takes advantage of the co-manifold structure among RGB channels. The neighbor self-similarity prior and co-manifold structure can make the reconstruction results of eyes and lips generated from the proposed method better than those from other methods. The experimental results in some public face databases indicated the superiority of the proposed method over the prior art face hallucination methods.
机译:最近,基于位置约束的线性编码(LLC)的技术已被广泛利用面部幻觉。然而,对于彩色面部图像,传统的LLC模型忽略了邻居自相似度以及不同颜色信道的相关性,从而导致不令人满意的表示。本文提出了一种新的邻居界面表示和频道间相关性(NRCC)模型,用于彩色面呈幻觉。与传统的LLC相比,NRCC充分利用了邻居自相似性,并利用RGB通道之间的共歧结构。邻居自我相似性先前和共歧管结构可以使得从所提出的方法产生的重建结果优于来自其他方法的方法。在一些公共面部数据库中的实验结果表明了在现有技术面对型幻觉方法上提出的方法的优越性。

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