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An improved two-step approach to hallucinating faces

机译:一种改进的两步幻觉方法

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摘要

Face hallucination is to synthesize a high-resolution facial image from a low-resolution input. In this paper, we present a new two-step approach to hallucinating faces motivated by the two-step algorithm of Liu et al. First, a linear relationship between both high-resolution and low-resolution facial images is established by applying PCA on both of them, and the global image, which is similar to the original high-resolution image, is reconstructed under a MAP criterion. Second, a linear model between the residual image (the difference between the original image and the global image) and the low-resolution residual image (the difference between the low-resolution input and the manually down-sampled global image) are built, and, following a MRF prior, the optimal residual image is estimated under a MAP criterion again. Experiments demonstrate that our approach can be applied to yield 4-8 fold super-resolution with high-quality hallucinated results.
机译:面部幻觉是从低分辨率输入合成高分辨率面部图像。在本文中,我们提出了一种新的两步方法,该方法是由Liu等人的两步算法激发的。首先,通过在两者上应用PCA来建立高分辨率和低分辨率面部图像之间的线性关系,并在MAP准则下重建与原始高分辨率图像相似的全局图像。其次,在残差图像(原始图像和全局图像之间的差异)和低分辨率残差图像(低分辨率输入与手动下采样的全局图像之间的差异)之间建立线性模型,然后遵循MRF先验后,将再次根据MAP标准估算最佳残差图像。实验表明,我们的方法可用于产生4-8倍的超分辨率,并产生高质量的幻觉结果。

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