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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Hallucinating faces: LPH super-resolution and neighbor reconstruction for residue compensation
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Hallucinating faces: LPH super-resolution and neighbor reconstruction for residue compensation

机译:幻觉脸:LPH超分辨率和邻域重建,用于残差补偿

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摘要

A two-phase face hallucination approach is proposed in this paper to infer high-resolution face image from the low-resolution observation based on a set of training image pairs. The proposed locality preserving hallucination (LPH) algorithm combines locality preserving projection (LPP) and radial basis function (RBF) regression together to hallucinate the global high-resolution face. Furthermore, in order to compensate the inferred global face with detailed inartificial facial features, the neighbor reconstruction based face residue hallucination is used. Compared with existing approaches, the proposed LPH algorithm can generate global face more similar to the ground truth face efficiently, moreover, the patch structure and search strategy carefully designed for the neighbor reconstruction algorithm greatly reduce the computational complexity without diminishing the quality of high-resolution face detail. The details of synthetic high-resolution face are further improved by a global linear smoother. Experiments indicate that our approach can synthesize distinct high-resolution faces with various facial appearances such as facial expressions, eyeglasses efficiently. (c) 2007 Pattern Recognition Society. Published by Elsevier Ltd. All rights reserved.
机译:本文提出了一种两阶段的幻觉方法,基于一组训练图像对,从低分辨率观察中推断出高分辨率面部图像。提出的局部保留幻觉(LPH)算法将局部保留投影(LPP)和径向基函数(RBF)回归结合在一起,以幻化全局高分辨率面部。此外,为了用详细的非人为面部特征补偿推断出的全局面部,使用了基于邻居重构的面部残留幻觉。与现有方法相比,所提出的LPH算法可以有效地生成更类似于地面真实面孔的全局面孔,而且,为邻居重建算法精心设计的补丁结构和搜索策略在不降低高分辨率质量的情况下大大降低了计算复杂度脸部细节。全局线性平滑器进一步改善了合成高分辨率面部的细节。实验表明,我们的方法可以有效地合成具有各种面部表情(如面部表情,眼镜)的高分辨率面部。 (c)2007模式识别学会。由Elsevier Ltd.出版。保留所有权利。

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