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  4. GMM-based Handwriting Style Identification System for Historical Documents
 
conference paper

GMM-based Handwriting Style Identification System for Historical Documents

Slimane, Fouad  
•
Schaßan, Torsten
•
Märgner, Volker
2014
Proceedings of the 6th International Conference of Soft Computing and Pattern Recognition
6th International Conference of Soft Computing and Pattern Recognition

In this paper, we describe a novel method for handwriting style identification. A handwriting style can be common to one or several writer. It can represent also a handwriting style used in a period of the history or for specific document. Our method is based on Gaussian Mixture Models (GMMs) using different kind of features computed using a combined fixed-length horizontal and vertical sliding window moving over a document page. For each writing style a GMM is built and trained using page images. At the recognition phase, the system returns log-likelihood scores. The GMM model with the highest score is selected. Experiments using page images from historical German document collection demonstrate good performance results. The identification rate of the GMM-based system developed with six historical handwriting style is 100%.

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Type
conference paper
Author(s)
Slimane, Fouad  
Schaßan, Torsten
Märgner, Volker
Date Issued

2014

Publisher place

Tunis, Tunisia

Published in
Proceedings of the 6th International Conference of Soft Computing and Pattern Recognition
Start page

387

End page

392

Subjects

handwriting style

•

GMMs

•

local features

•

sliding window

•

historical German document collection

•

transcription

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
DHLAB  
Event nameEvent placeEvent date
6th International Conference of Soft Computing and Pattern Recognition

Tunis, Tunisia

August 11-14, 2014

Available on Infoscience
August 18, 2014
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/105873
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