Official implementation of Deep Convolutional Dictionary Learning for Image Denoising.

Overview

DCDicL for Image Denoising

Hongyi Zheng*, Hongwei Yong*, Lei Zhang, "Deep Convolutional Dictionary Learning for Image Denoising," in CVPR 2021. (* Equal contribution)

[paper] [supp]

The implementation of DCDicL is based on the awesome Image Restoration Toolbox [KAIR].

Requirement

  • PyTorch 1.6+
  • prettytable
  • tqdm

Testing

Step 1

  • Download pretrained models from [OneDrive].
  • Unzip downloaded file and put the folders into ./release/denoising

Step 2

Configure options/test_denoising.json. Important settings:

  • task: task name.
  • path/root: path to save the tasks
  • path/pretrained_netG: path to the folder containing the pretrained models.
  • data/n_channels: 1 for greyscale and 3 for color.
  • test/visualize: true for saving the noisy input/predicted dictionaries.

Step 3

python test_dcdicl.py

Training

Training code will be released soon.

Owner
Z80
.
Z80
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