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conference paper

A graph learning approach for light field image compression

Viola, Irene  
•
Petric Maretic, Hermina  
•
Frossard, Pascal  
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2018
Applications of Digital Image Processing XLI
SPIE Optical Engineering + Applications

In recent years, light field imaging has attracted the attention of the academic and industrial communities thanks to its enhanced rendering capabilities that allow to visualise contents in a more immersive and interactive way. However, those enhanced capabilities come at the cost of a considerable increase in content size when compared to traditional image and video applications. Thus, advanced compression schemes are needed to efficiently reduce the volume of data for storage and delivery of light field content. In this paper, we introduce a novel method for compression of light field images. The proposed solution is based on a graph learning approach to estimate the disparity among the views composing the light field. The graph is then used to reconstruct the entire light field from an arbitrary subset of encoded views. Experimental results show that our method is a promising alternative to current compression algorithms for light field images, with notable gains across all bitrates with respect to the state of the art.

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Type
conference paper
DOI
10.1117/12.2322827
Author(s)
Viola, Irene  
Petric Maretic, Hermina  
Frossard, Pascal  
Ebrahimi, Touradj  
Date Issued

2018

Publisher

Spie-Int Soc Optical Engineering

Publisher place

Bellingham

Published in
Applications of Digital Image Processing XLI
Total of pages

12

Series title/Series vol.

Proceedings of SPIE

Issue

Spie-Int Soc Optical Engineering

Subjects

light field compression

•

graph learning

•

view reconstruction

•

image coding

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
GR-EB  
LTS4  
Event nameEvent placeEvent date
SPIE Optical Engineering + Applications

San Diego, California, USA

August 19-23, 2018

Available on Infoscience
August 23, 2018
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/147908
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