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dc.date.accessioned 2016-04-21T12:07:43Z
dc.date.available 2016-04-21T12:07:43Z
dc.date.issued 2016-04
dc.identifier.uri http://sedici.unlp.edu.ar/handle/10915/52376
dc.description.abstract Automatic sign language recognition is an important topic within the areas of human-computer interaction and machine learning. On the one hand, it poses a complex challenge that requires the intervention of various knowledge areas, such as video processing, image processing, intelligent systems and linguistics. On the other hand, robust recognition of sign language could assist in the translation process and the integration of hearingimpaired people. This paper offers two main contributions: first, the creation of a database of handshapes for the Argentinian Sign Language (LSA), which is a topic that has barely been discussed so far. Secondly, a technique for image processing, descriptor extraction and subsequent handshape classification using a supervised adaptation of self-organizing maps that is called ProbSom. This technique is compared to others in the state of the art, such as Support Vector Machines (SVM), Random Forests, and Neural Networks. The database that was built contains 800 images with 16 LSA conjurations, and is a first step towards building a comprehensive database of Argentinian signs. The ProbSom-based neural classifier, using the proposed descriptor, achieved an accuracy rate above 90%. en
dc.format.extent 1-5 es
dc.language en es
dc.subject radon transform en
dc.subject Lenguaje de Signos es
dc.subject handshape recognition en
dc.title Handshape recognition for Argentinian Sign Language using ProbSom en
dc.type Articulo es
sedici.identifier.uri http://journal.info.unlp.edu.ar/wp-content/uploads/2015/10/JCST-42-Paper-1.pdf es
sedici.identifier.issn 1666-6038 es
sedici.creator.person Ronchetti, Franco es
sedici.creator.person Quiroga, Facundo es
sedici.creator.person Estrebou, César Armando es
sedici.creator.person Lanzarini, Laura Cristina es
sedici.subject.materias Ciencias Informáticas es
sedici.description.fulltext true es
mods.originInfo.place Facultad de Informática es
sedici.subtype Articulo es
sedici.rights.license Creative Commons Attribution 3.0 Unported (CC BY 3.0)
sedici.rights.uri http://creativecommons.org/licenses/by/3.0/
sedici.description.peerReview peer-review es
sedici.relation.journalTitle Journal of Computer Science & Technology es
sedici.relation.journalVolumeAndIssue vol. 16, no. 1 es


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Creative Commons Attribution 3.0 Unported (CC BY 3.0) Excepto donde se diga explícitamente, este item se publica bajo la siguiente licencia Creative Commons Attribution 3.0 Unported (CC BY 3.0)