Publication

Type of publication:Techreport
Entered by:jojo
Title Writer Identification for Smart Meeting Room Systems
Bibtex cite IDliwiki:rr05-70
Year published 2005
Number 70
Institution IDIAP
Note Published in Seventh IAPR Workshop on Document Analysis Systems, DAS, 2006
Abstract
In this paper we present a text independent on-line writer identification system based on Gaussian Mixture Models (GMMs). This system has been developed in the context of research on Smart Meeting Rooms. The GMMs in our system are trained using two sets of features extracted from a text line. The first feature set is similar to feature sets used in signature verification systems before. It consists of information gathered for each recorded point of the handwriting, while the second feature set contains features extracted from each stroke. While both feature sets perform very favorably, the stroke-based feature set outperforms the point-based feature set in our experiments. We achieve a writer identification rate of 100\% for writer sets with up to 100 writers. Increasing the number of writers to 200, the identification rate decreases to 94.75\%.
Authors
Liwicki, Marcus
Schlapbach, Andreas
Bunke, Horst
Bengio, Samy
Mariéthoz, Johnny
Richiardi, Jonas
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Crossref by:liwiki:das:2006
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Total mark: 5
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