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Cool-Chic: Perceptually Tuned Low Complexity Overfitted Image Coder

Authors :
Ladune, Théo
Philippe, Pierrick
Clare, Gordon
Henry, Félix
Leguay, Thomas
Publication Year :
2024

Abstract

This paper summarises the design of the Cool-Chic candidate for the Challenge on Learned Image Compression. This candidate attempts to demonstrate that neural coding methods can lead to low complexity and lightweight image decoders while still offering competitive performance. The approach is based on the already published overfitted lightweight neural networks Cool-Chic, further adapted to the human subjective viewing targeted in this challenge.<br />Comment: Challenge on Learned Image Compression (CLIC), DCC2024

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2401.02156
Document Type :
Working Paper