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Copy and Paste GAN: Face Hallucination From Shaded Thumbnails

机译:复制和粘贴GAN:阴影阴影的面部幻觉

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Existing face hallucination methods based on convolutional neural networks (CNN) have achieved impressive performance on low-resolution (LR) faces in a normal illumination condition. However, their performance degrades dramatically when LR faces are captured in low or non-uniform illumination conditions. This paper proposes a Copy and Paste Generative Adversarial Network (CPGAN) to recover authentic high-resolution (HR) face images while compensating for low and non-uniform illumination. To this end, we develop two key components in our CPGAN: internal and external Copy and Paste nets (CPnets). Specifically, our internal CPnet exploits facial information residing in the input image to enhance facial details; while our external CPnet leverages an external HR face for illumination compensation. A new illumination compensation loss is thus developed to capture illumination from the external guided face image effectively. Furthermore, our method offsets illumination and upsamples facial details alternatively in a coarse-to-fine fashion, thus alleviating the correspondence ambiguity between LR inputs and external HR inputs. Extensive experiments demonstrate that our method manifests authentic HR face images in a uniform illumination condition and outperforms state-of-the-art methods qualitatively and quantitatively.
机译:基于卷积神经网络(CNN)的现有面呈幻觉方法在正常照明条件下对低分辨率(LR)面上的令人印象深刻的性能。然而,当在低或不均匀的照明条件下捕获LR面时,它们的性能显着降低。本文提出了一种复制和粘贴生成的对抗性网络(CPGan),以恢复正宗的高分辨率(HR)面部图像,同时补偿低且不均匀的照明。为此,我们在CPGAN中开发了两个关键组件:内部和外部复制和粘贴网(CPNets)。具体而言,我们的内部CPNet利用驻留在输入图像中的面部信息以增强面部细节;虽然我们的外部CPNet利用外部人力资源面部进行照明补偿。因此开发了一种新的照明补偿损失以有效地捕获外部引导面图像的照明。此外,我们的方法以粗细的方式替代地偏离照明和上载面部细节,从而减轻了LR输入和外部HR输入之间的对应模糊性。广泛的实验表明,我们的方法在均匀的照明条件下表现出真实的HR面部图像,并且定性和定量地优于最先进的方法。

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