Joint learned compression and denoising schemes for improved photographic image quality and reduced processing complexity

This thesis addresses image compression and denoising using deep learning, enhancing visual quality and computational efficiency. For compression, convolutional autoencoders are improved by replacing computationally expensive, single-feature parametric entropy models with a simplified scheme using multiple, pre-learned, static cumulative distribution function tables. This significantly reduces entropy coding/decoding complexity during inference. Image denoising involves the removal of unwanted noise from images captured under suboptimal conditions. Noise not only degrades image quality but also impairs the performance of compression algorithms, as it is inherently non-compressible. This thesis proposes a unified model that performs joint denoising and compression. By training the model on noisy-clean image pairs across a wide range of noise levels, it learns to denoise images as part of the compression process while maintaining the computational cost of compression alone. This joint approach improves rate-distortion performance compared to compressing noisy images or using separate denoising and compression models.
Additionally, the model is capable of producing decompressed images with visual quality superior to that of the noisy uncompressed input. The final part of this thesis focuses on raw input images. Processing raw or minimally processed images offers substantial gains in both compression efficiency and denoising quality compared to working with fully processed images. Treating Bayer images as 4-channel inputs reduces the computational complexity of denoising models and compression encoders by a factor of four, while also improving compression performance at lower bitrates. Moreover, denoising raw or linear RGB images early in the processing pipeline enables greater generalization. A novel dataset of raw cleannoisy image pairs is introduced to support further research and the development of models integrated into image processing software pipelines.


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Specifications


Publisher
Presses universitaires de Louvain
Author
Benoît Brummer,
Set
| n° 1025
Language
English
BISAC Subject Heading
TEC000000 TECHNOLOGY & ENGINEERING > TEC015000 TECHNOLOGY & ENGINEERING / Imaging Systems > TEC043000 TECHNOLOGY & ENGINEERING / Television & Video
BIC subject category (UK)
U Computing & information technology > T Technology, engineering, agriculture
Onix Audience Codes
06 Professional and scholarly
CLIL (Version 2013-2019)
3069 TECHNIQUES ET SCIENCES APPLIQUEES > 3072 Electronique > 3077 Graphisme et image
Title First Published
16 June 2026
Subject Scheme Identifier Code
: Graphisme et multimédia
: Informatique

Paperback


Publication Date
16 June 2026
ISBN-13
9782390615682
Extent
Main content page count : 128
Code
108461
Dimensions
16 x 24 cm
Weight
217 grams
Packaging Type
No outer packaging
List Price
18.00 €
ONIX XML
Version 2.1, Version 3

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Contents


1 Introduction 1
1.1 Motivation 1
1.2 Thesis contributions 3
1.3 Thesis structure 5
2 Background 7
2.1 Image development 7
2.2 Convolutional neural networks 11
2.3 Image denoising 15
2.4 Image compression 22
3 End-to-end optimized image compression with competition of prior distributions 33
3.1 Related works 34
3.2 Competition of prior distributions 35
3.3 Experiments 39
3.4 Conclusion 45
4 On the importance of denoising when learning to compress images 47
4.1 Background 49
4.2 Jointly learned denoising and compression 51
4.3 Experiments 54
4.4 Conclusion 63
5 Learning joint denoising, debayering and compression from the Raw Natural Image Noise Dataset 65
5.1 Related work 67
5.2 Proposed approach 70
5.3 Validation methodology 77
5.4 Results and discussion 81
5.4.1 Denoising performance 81
5.5 Conclusion 89
6 Conclusion 91
6.1 Results summary 92
6.2 Perspectives 93
Acknowledgements 97
Bibliography 99