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dc.creatorBaldiviezo, M. G.
dc.creatorBarbería, J.L.
dc.creatorBontempo, C. B.
dc.creatorCorsaro, Y.
dc.creatorFernández Biancardi, F.
dc.creatorHernando, M. R.
dc.creatorLicata Caruso, L.
dc.creatorPaglia, A.
dc.creatorRodríguez, M. R.
dc.creatorLegnani, W. E.
dc.date.accessioned2024-03-19T20:26:38Z
dc.date.available2024-03-19T20:26:38Z
dc.date.issued2023-01-01
dc.identifier.citationTrends in Computational and Applied Mathematics, 24es_ES
dc.identifier.urihttp://hdl.handle.net/20.500.12272/9922
dc.description.abstractThe auditory brainstem response (ABR) by evoked potentials is a widespread auditory pathway assessment technique. This is largely applied due to its cost-effectiveness, practicality and ease of use. In contrast, it requires a trained professional to carry out the analysis of the results. This motivates several research efforts to increase the independence of the diagnostician. To this end, the present work shows the ability of three signal classification tools to differentiate ABR studies of normal hearing subjects from those who may have some pathology. As a starting point, the PhysioNet short term auditory evoked potentials databases are used to calculate the features later applied to construct the dataset. The features used are diverse classes of permutation entropy, fractal dimension, the Lyapunov exponent and the zero crossing rate. To ensure more accurate results, a Montecarlo simulation of one thousand trials is employed to train thees_ES
dc.description.sponsorshipUTN FRBAes_ES
dc.formatpdfes_ES
dc.language.isoenges_ES
dc.rightsopenAccesses_ES
dc.rights.urihttp://creativecommons.org/licenses/by-nc-sa/4.0/*
dc.rights.uriAtribución-NoComercial-CompartirIgual 4.0 Internacional*
dc.sourceTrends in Computational and Applied Mathematics, 24 (1), 63-81. (2023)es_ES
dc.subjectauditory evoked potentialses_ES
dc.subjectpermutation entropyes_ES
dc.subjectsignal classificationes_ES
dc.subjectfractal dimensiones_ES
dc.subjectLyapunov exponentes_ES
dc.subjectzero crossing ratees_ES
dc.subjectsupport vector machineses_ES
dc.subjectrandom forestes_ES
dc.subjectK-nearest neighbourses_ES
dc.titleApplication of signal classifiers in auditory evoked potentials for the detection of pathological patientses_ES
dc.typeinfo:eu-repo/semantics/articlees_ES
dc.rights.holderM . G. BALDIVIEZO, J. L. BARBERIA, C. B. BONTEMPO, Y. CORSARO, F. FERNANDEZ BIANCARDI, M. R. HERNANDO, L. LICAT A CARUSO, A. PAGLIA, M. R. RODRIGUEZ, W. E. LEGNANIes_ES
dc.description.affiliationFil: Baldiviezo, M. G. Facultad Regional Buenos Aires. Signal and Image Processing Center; Argentina.es_ES
dc.description.affiliationFil: Barbería, J.L. Facultad Regional Buenos Aires. Signal and Image Processing Center; Argentina.es_ES
dc.description.affiliationFil: Bontempo, C. B. Facultad Regional Buenos Aires. Signal and Image Processing Center; Argentina.es_ES
dc.description.affiliationFil: Corsaro, Y. Facultad Regional Buenos Aires. Signal and Image Processing Center; Argentina.es_ES
dc.description.affiliationFil: Fernández Biancardi, F. Facultad Regional Buenos Aires. Signal and Image Processing Center; Argentina.es_ES
dc.description.affiliationFil: Hernando, M. R. Facultad Regional Buenos Aires. Signal and Image Processing Center; Argentina.es_ES
dc.description.affiliationFil: Licata Caruso, L. Facultad Regional Buenos Aires. Signal and Image Processing Center; Argentina.es_ES
dc.description.affiliationFil: Paglia, A. Facultad Regional Buenos Aires. Signal and Image Processing Center; Argentina.es_ES
dc.description.affiliationFil: Rodríguez, M. R. Facultad Regional Buenos Aires. Signal and Image Processing Center; Argentinaes_ES
dc.description.affiliationFil: Legnani, W. E. Facultad Regional Buenos Aires. Signal and Image Processing Center; Argentina.es_ES
dc.description.peerreviewedPeer Reviewedes_ES
dc.relation.projectidASTCABA0008120es_ES
dc.type.versionpublisherVersiones_ES
dc.rights.useLicencia Creative Commons Atribución- No Comerciales_ES
dc.identifier.doi10.5540/tcam.2022.024.01.00063


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