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5 months ago

DeblurGAN-v2: Deblurring (Orders-of-Magnitude) Faster and Better

Kupyn Orest ; Martyniuk Tetiana ; Wu Junru ; Wang Zhangyang

DeblurGAN-v2: Deblurring (Orders-of-Magnitude) Faster and Better

Abstract

We present a new end-to-end generative adversarial network (GAN) for singleimage motion deblurring, named DeblurGAN-v2, which considerably boostsstate-of-the-art deblurring efficiency, quality, and flexibility. DeblurGAN-v2is based on a relativistic conditional GAN with a double-scale discriminator.For the first time, we introduce the Feature Pyramid Network into deblurring,as a core building block in the generator of DeblurGAN-v2. It can flexibly workwith a wide range of backbones, to navigate the balance between performance andefficiency. The plug-in of sophisticated backbones (e.g., Inception-ResNet-v2)can lead to solid state-of-the-art deblurring. Meanwhile, with light-weightbackbones (e.g., MobileNet and its variants), DeblurGAN-v2 reaches 10-100 timesfaster than the nearest competitors, while maintaining close tostate-of-the-art results, implying the option of real-time video deblurring. Wedemonstrate that DeblurGAN-v2 obtains very competitive performance on severalpopular benchmarks, in terms of deblurring quality (both objective andsubjective), as well as efficiency. Besides, we show the architecture to beeffective for general image restoration tasks too. Our codes, models and dataare available at: https://github.com/KupynOrest/DeblurGANv2

Code Repositories

vcarehuman/YoloPose
pytorch
Mentioned in GitHub
KupynOrest/DeblurGANv2
Official
pytorch
Mentioned in GitHub
TAMU-VITA/DeblurGANv2
pytorch
Mentioned in GitHub
kritiksoman/GIMP-ML
pytorch
Mentioned in GitHub
vita-group/deblurganv2
pytorch
Mentioned in GitHub
HDCVLab/MC-Blur-Dataset
pytorch
Mentioned in GitHub

Benchmarks

BenchmarkMethodologyMetrics
blind-face-restoration-on-celeba-testDeblurGANv2*
Deg.: 39.64
FID: 52.69
LPIPS: 40.01
NIQE: 4.917
PSNR: 25.91
SSIM: 0.6952
deblurring-on-basedDeblurGAN Inception
Subjective: 1.0375
deblurring-on-based-1DeblurGAN Inception
ERQAv2.0: 0.74297
LPIPS: 0.08867
PSNR: 31.17171
SSIM: 0.94301
VMAF: 66.91781
deblurring-on-goproDeblurGAN-v2
PSNR: 29.55
SSIM: 0.934
deblurring-on-goproDeblurGANv2-MobileNet
PSNR: 28.17
SSIM: 0.925
deblurring-on-goproDeblurGANv2-MobileNet-DSC
PSNR: 28.03
SSIM: 0.922
deblurring-on-realblur-j-1DeblurGAN-v2
PSNR (sRGB): 29.69
Params(M): 5.08
SSIM (sRGB): 0.870
deblurring-on-realblur-j-trained-on-goproDeblurGAN-v2
PSNR (sRGB): 28.70
SSIM (sRGB): 0.866
deblurring-on-realblur-rDeblurGAN-v2
PSNR (sRGB): 36.44
SSIM (sRGB): 0.935
deblurring-on-realblur-r-trained-on-goproDeblurGAN-v2
SSIM (sRGB): 0.944
image-deblurring-on-goproDeblurGAN-v2
PSNR: 29.55
Params (M): 5.08
SSIM: 0.925
image-deblurring-on-goproDeblurGANv2-MobileNet
PSNR: 28.17
image-deblurring-on-goproDeblurGANv2-MobileNet-DSC
PSNR: 28.03
SSIM: 0.922

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