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FSRNet: End-to-End Learning Face Super-Resolution with Facial Priors

机译:FSRNet:带有面部先验的端到端学习面孔超分辨率

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Face Super-Resolution (SR) is a domain-specific superresolution problem. The facial prior knowledge can be leveraged to better super-resolve face images. We present a novel deep end-to-end trainable Face Super-Resolution Network (FSRNet), which makes use of the geometry prior, i.e., facial landmark heatmaps and parsing maps, to super-resolve very low-resolution (LR) face images without well-aligned requirement. Specifically, we first construct a coarse SR network to recover a coarse high-resolution (HR) image. Then, the coarse HR image is sent to two branches: a fine SR encoder and a prior information estimation network, which extracts the image features, and estimates landmark heatmaps/parsing maps respectively. Both image features and prior information are sent to a fine SR decoder to recover the HR image. To generate realistic faces, we also propose the Face Super-Resolution Generative Adversarial Network (FSRGAN) to incorporate the adversarial loss into FSRNet. Further, we introduce two related tasks, face alignment and parsing, as the new evaluation metrics for face SR, which address the inconsistency of classic metrics w.r.t. visual perception. Extensive experiments show that FSRNet and FSRGAN significantly outperforms state of the arts for very LR face SR, both quantitatively and qualitatively.
机译:人脸超分辨率(SR)是特定于域的超分辨率问题。可以利用面部先验知识更好地超分辨面部图像。我们提出了一种新颖的深度端到端可训练人脸超分辨率网络(FSRNet),该网络利用几何先验(即人脸地标热图和解析图)来超分辨超低分辨率(LR)人脸图像没有统一的要求。具体来说,我们首先构建一个粗糙的SR网络以恢复粗糙的高分辨率(HR)图像。然后,将粗糙的HR图像发送到两个分支:精细SR编码器和先验信息估计网络,后者提取图像特征并分别估计地标热图/解析图。图像特征和先验信息都发送到精细SR解码器以恢复HR图像。为了生成逼真的面孔,我们还提出了面孔超分辨率生成对抗网络(FSRGAN),以将对抗损失纳入FSRNet。此外,我们引入了两个相关的任务,即人脸对齐和解析,作为人脸SR的新评估指标,解决了经典指标w.r.t.视觉感知。大量的实验表明,无论是定量还是定性,FSRNet和FSRGAN都大大优于LR面部SR的最新技术水平。

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