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dc.contributor.author REYNOSO MUÑOZ, JENNIFER LYNN
dc.contributor.author CUEVAS RASGADO, ALMA DELIA
dc.contributor.author García Lamont, Farid
dc.contributor.author GUZMAN ARENAS, ADOLFO
dc.creator REYNOSO MUÑOZ, JENNIFER LYNN;x1232911
dc.creator CUEVAS RASGADO, ALMA DELIA; 162873
dc.creator García Lamont, Farid; 216477
dc.creator GUZMAN ARENAS, ADOLFO; 3042
dc.date.accessioned 2016-05-11T15:56:33Z
dc.date.available 2016-05-11T15:56:33Z
dc.date.issued 2015-08-01
dc.identifier.issn 1548-0992
dc.identifier.uri http://hdl.handle.net/20.500.11799/41185
dc.description.abstract This paper focuses on the representation of magnetic resonances of different parts of the human body, such as knees, spinal column, arms, elbows, etc., using ontologies. First, it maps the resonance images in a multimedia database. Then, automatically, using the SIFT pattern recognition algorithm, descriptors of the images stored in the database are extracted in order to recover useful data for the user; it uses the ontologies as an artificial intelligence tool and, in consequence, reduces generation of useless data. Why do we think this is an interesting task? Because, if the user requires information about any topics or (s)he has some illness or needs to undergo magnetic resonance, this tool will show him/her images and text to convey a better understanding, helping to obtain useful conclusions. Artificial intelligence techniques are used, such as machine learning, knowledge representation, and pattern recognition. The ontological relations introduced here are based on the common representation of language, using definition dictionaries, Roget’s thesaurus, synonym dictionaries, and other resources. The system generates an output in the OM ontological language [1]. This language represents a structure where our system adds the data scanned by the SIFT algorithm. The tests have been made in Spanish; however, thanks to the portability of our system, it is possible to extend the method to any language. es
dc.description.sponsorship Proyecto UAEM 3454CHT/2013 es
dc.language.iso spa es
dc.publisher IEEE Latin America Transactions es
dc.relation.ispartofseries 10.1109/TLA.2015.7332153;
dc.rights openAccess
dc.rights.uri http://creativecommons.org/licenses/by-nc-nd/4.0
dc.subject artificial intelligence
dc.subject ontology
dc.subject multimedia database
dc.subject pattern recognition
dc.subject magnetic resonance
dc.subject.classification INGENIERÍA Y TECNOLOGÍA
dc.title Automatic mapping magnetic resonance images into multimedia database using SIFT es
dc.type Artículo
dc.provenance Científica
dc.road Dorada
dc.ambito Internacional es
dc.audience students
dc.audience researchers
dc.type.conacyt article
dc.identificator 7


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  • Título
  • Automatic mapping magnetic resonance images into multimedia database using SIFT
  • Autor
  • REYNOSO MUÑOZ, JENNIFER LYNN
  • CUEVAS RASGADO, ALMA DELIA
  • García Lamont, Farid
  • GUZMAN ARENAS, ADOLFO
  • Fecha de publicación
  • 2015-08-01
  • Editor
  • IEEE Latin America Transactions
  • Tipo de documento
  • Artículo
  • Palabras clave
  • artificial intelligence
  • ontology
  • multimedia database
  • pattern recognition
  • magnetic resonance
  • Los documentos depositados en el Repositorio Institucional de la Universidad Autónoma del Estado de México se encuentran a disposición en Acceso Abierto bajo la licencia Creative Commons: Atribución-NoComercial-SinDerivar 4.0 Internacional (CC BY-NC-ND 4.0)

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