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4xHFA2k_ludvae_realplksr_dysample

4xRealPLKSR_dysampleby Helaman

Link to Github Release

4xHFA2k_ludvae_realplksr_dysample
Scale: 4
Architecture: RealPLKSR with Dysample
Architecture Option: realplksr

Author: Philip Hofmann
License: CC-BY-0.4 Purpose: Restoration
Subject: Anime
Input Type: Images
Release Date: 13.07.2024

Dataset: HFA2k_LUDVAE
Dataset Size: 10'272
OTF (on the fly augmentations): No
Pretrained Model: 4xNomos2_realplksr_dysample
Iterations: 165'000
Batch Size: 12
GT Size: 256

Description:
A Dysample RealPLKSR 4x upscaling model for anime single-image resolution.
The dataset has been degraded using DM600_LUDVAE, for more realistic noise/compression. Downscaling algorithms used were imagemagick box, triangle, catrom, lanczos and mitchell. Blurs applied were gaussian, box and lens blur (using chaiNNer). Some images were further compressed using -quality 75-92. Down-up was applied to roughly 10% of the dataset (5 to 15% variation in size). Degradations orders were shuffled, to give as many variations as possible.

Examples are inferenced with neosr testscript and the released pth file. I include the test images also as a zip file in this release together with the model outputs, so others can test their models against these test images aswell to compare.

onnx conversions are static since dysample doesnt allow dynamic conversion, I tested the conversions with chaiNNer.

Showcase:
Slowpics

Training details (7)
Date
2024-07-13
Dataset
HFA2k_LUDVAE
Dataset size
10272
Training iterations
165000
Training batch size
12
Training HR size
256
Training OTF
No

Downloads

Model

Architecture
RealPLKSR_dysample
Scale
4x
Color Mode

Rights

CC-BY-4.0
Private use
Commercial use
Distribution
Modifications
Credit required
State Changes
No Liability & Warranty
Disclaimer

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