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  4. Visual Link Retrieval in a Database of Paintings
 
conference paper not in proceedings

Visual Link Retrieval in a Database of Paintings

Seguin, Benoît Laurent Auguste  
•
Striolo, Carlota
•
di Lenardo, Isabella  orcid-logo
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2016
VISART Workshop, ECCV

This paper examines how far state-of-the-art machine vision algorithms can be used to retrieve common visual patterns shared by series of paintings. The research of such visual patterns, central to Art History Research, is challenging because of the diversity of similarity criteria that could relevantly demonstrate genealogical links. We design a methodology and a tool to annotate efficiently clusters of similar paintings and test various algorithms in a retrieval task. We show that pretrained convolutional neural network can perform better for this task than other machine vision methods aimed at photograph analysis. We also show that retrieval performance can be significantly improved by fine-tuning a network specifically for this task.

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Type
conference paper not in proceedings
DOI
10.1007/978-3-319-46604-0_52
Author(s)
Seguin, Benoît Laurent Auguste  
Striolo, Carlota
di Lenardo, Isabella  orcid-logo
Kaplan, Frédéric  
Date Issued

2016

ISBN of the book

978-3-319-46604-0

Subjects

Computer Vision

•

Machine Learning

Editorial or Peer reviewed

REVIEWED

Written at

OTHER

EPFL units
DHLAB  
Event nameEvent placeEvent date
VISART Workshop, ECCV

Amsterdam

September, 2016

Available on Infoscience
December 19, 2016
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/132112
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