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4 months ago

Feedback Network for Image Super-Resolution

Zhen Li; Jinglei Yang; Zheng Liu; Xiaomin Yang; Gwanggil Jeon; Wei Wu

Feedback Network for Image Super-Resolution

Abstract

Recent advances in image super-resolution (SR) explored the power of deep learning to achieve a better reconstruction performance. However, the feedback mechanism, which commonly exists in human visual system, has not been fully exploited in existing deep learning based image SR methods. In this paper, we propose an image super-resolution feedback network (SRFBN) to refine low-level representations with high-level information. Specifically, we use hidden states in an RNN with constraints to achieve such feedback manner. A feedback block is designed to handle the feedback connections and to generate powerful high-level representations. The proposed SRFBN comes with a strong early reconstruction ability and can create the final high-resolution image step by step. In addition, we introduce a curriculum learning strategy to make the network well suitable for more complicated tasks, where the low-resolution images are corrupted by multiple types of degradation. Extensive experimental results demonstrate the superiority of the proposed SRFBN in comparison with the state-of-the-art methods. Code is avaliable at https://github.com/Paper99/SRFBN_CVPR19.

Code Repositories

tianbaochou/YOUKU-VSRE-2019-49th
pytorch
Mentioned in GitHub
turboLIU/SRFBN-tensorflow
tf
Mentioned in GitHub
JihyunLee9805/GMFN
pytorch
Mentioned in GitHub
Paper99/SRFBN_CVPR19
Official
pytorch
Mentioned in GitHub

Benchmarks

BenchmarkMethodologyMetrics
image-super-resolution-on-bsd100-2x-upscalingSRFBN
PSNR: 32.29
image-super-resolution-on-bsd100-3x-upscalingSRFBN
PSNR: 29.24
image-super-resolution-on-bsd100-4x-upscalingSRFBN
PSNR: 27.72
SSIM: 0.7409
image-super-resolution-on-ffhq-1024-x-1024-4xSRFBN
FID: 17.14
MS-SSIM: 0.931
PSNR: 27.90
SSIM: 0.822
image-super-resolution-on-ffhq-256-x-256-4xSRFBN
FID: 132.59
MS-SSIM: 0.895
PSNR: 21.96
SSIM: 0.693
image-super-resolution-on-ffhq-512-x-512-4xSRFBN
FED: 0.0984
FID: 20.032
LLE: 2.066
LPIPS: 0.2406
MS-SSIM: 0.953
NIQE: 13.901
PSNR: 29.577
SSIM: 0.827
image-super-resolution-on-manga109-2xSRFBN
PSNR: 39.08
image-super-resolution-on-manga109-3xSRFBN
PSNR: 34.18
image-super-resolution-on-manga109-4xSRFBN
PSNR: 31.15
SSIM: 0.9160
image-super-resolution-on-set14-2x-upscalingSRFBN
PSNR: 33.82
image-super-resolution-on-set14-3x-upscalingSRFBN
PSNR: 30.1
image-super-resolution-on-set14-4x-upscalingSRFBN
PSNR: 28.81
SSIM: 0.7868
image-super-resolution-on-set5-2x-upscalingSRFBN
PSNR: 38.11
image-super-resolution-on-set5-3x-upscalingSRFBN
PSNR: 34.70
image-super-resolution-on-urban100-2xSRFBN
PSNR: 32.62
image-super-resolution-on-urban100-3xSRFBN
PSNR: 28.73
image-super-resolution-on-urban100-4xSRFBN
PSNR: 26.6
SSIM: 0.8015

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