DeblurGANv2 VS Ghost-DeblurGAN

Compare DeblurGANv2 vs Ghost-DeblurGAN and see what are their differences.

DeblurGANv2

[ICCV 2019] "DeblurGAN-v2: Deblurring (Orders-of-Magnitude) Faster and Better" by Orest Kupyn, Tetiana Martyniuk, Junru Wu, Zhangyang Wang (by VITA-Group)

Ghost-DeblurGAN

This is a lightweight GAN developed for real-time deblurring. The model has a super tiny size and a rapid inference time. The motivation is to boost marker detection in robotic applications, however, you may use it for other applications definitely. (by York-SDCNLab)
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DeblurGANv2 Ghost-DeblurGAN
1 1
976 34
2.8% -
0.0 3.4
almost 2 years ago 8 months ago
Python Python
GNU General Public License v3.0 or later MIT License
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DeblurGANv2

Posts with mentions or reviews of DeblurGANv2. We have used some of these posts to build our list of alternatives and similar projects.
  • Implementing a CNN on an FPGA
    1 project | /r/FPGA | 11 Oct 2021
    I am trying to implement an image deblurring model (DeblurGANv2) The generator takes blurred images as an input and outputs the corrected image, the discriminator helps in training the generator. The model has been trained and I have run and deblurred images on a GPU. I am completely new to the domain of Machine learning and I am trying to implement this on an FPGA. I wanted your guys help on how to do this. The .h5 files contains the weights of the NN, how do I figure out its structure and put it on my FPGA. Can you please suggest some tools that might help or github links for people who have implemented similar stuff.

Ghost-DeblurGAN

Posts with mentions or reviews of Ghost-DeblurGAN. We have used some of these posts to build our list of alternatives and similar projects.
  • Apriltag pose detection on curved surface
    1 project | /r/robotics | 3 Aug 2022
    You could try some sort of Image restoration GAN to produce a modified output of the input image (which lies on the curved surface). I have conducted research on GANs for deblurring Fiducial markers, and simply put, the Network takes a blurred image containing fiducial markers and outputs a ‘deblurred image’ whose fiducial markers can be more easily detected. However, keep in mind that the GANs can perform a wide variety of operations on an input Image (other than just deblurring), hence, they are called Image restoration networks in general. What you could give a shot is, create a pipeline where the captured image goes into the GAN, then the output is fed to the Apriltag detector. Here is the link to our GitHub if you need a starter: https://github.com/York-SDCNLab/Ghost-DeblurGAN, and some of my other suggestions are NAFNet and HINet.

What are some alternatives?

When comparing DeblurGANv2 and Ghost-DeblurGAN you can also consider the following projects:

pix2pixHD - Synthesizing and manipulating 2048x1024 images with conditional GANs

StyleGAN.pytorch - A PyTorch implementation for StyleGAN with full features.

Pix2Vox - The official implementation of "Pix2Vox: Context-aware 3D Reconstruction from Single and Multi-view Images". (Xie et al., ICCV 2019)

DE-GAN - Document Image Enhancement with GANs - TPAMI journal

XVFI - [ICCV 2021, Oral 3%] Official repository of XVFI

ALAE - [CVPR2020] Adversarial Latent Autoencoders

pi-GAN-pytorch - Implementation of π-GAN, for 3d-aware image synthesis, in Pytorch

tapnet - Tracking Any Point (TAP)

NAFNet - The state-of-the-art image restoration model without nonlinear activation functions.