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    Por favor, use este identificador para citar o enlazar este ítem:https://uvadoc.uva.es/handle/10324/65595

    Título
    Utility of AdaBoost to detect sleep apnea-hypopnea syndrome from single-channel airflow
    Autor
    Gutierrez Tobal, Gonzalo CésarAutoridad UVA Orcid
    Álvarez González, DanielAutoridad UVA Orcid
    Campo Matias, Félix delAutoridad UVA Orcid
    Hornero Sánchez, RobertoAutoridad UVA Orcid
    Año del Documento
    2016
    Editorial
    Institute of Electrical and Electronics Engineers (IEEE)
    Descripción
    Producción Científica
    Documento Fuente
    IEEE Transactions on Biomedical Engineering, 2016, vol. 63, n. 3, p. 636-646.
    Resumen
    Goal: The purpose of this study is to evaluate the usefulness of the boosting algorithm AdaBoost (AB) in the context of the sleep apnea-hypopnea syndrome (SAHS) diagnosis. Methods: We characterize SAHS in single-channel airflow (AF) signals from 317 subjects by the extraction of spectral and nonlinear features. Relevancy and redundancy analyses are conducted through the fast correlation-based filter to derive the optimum set of features among them. These are used to feed classifiers based on linear discriminant analysis (LDA) and classification and regression trees (CART). LDA and CART models are sequentially obtained through AB, which combines their performances to reach higher diagnostic ability than each of them separately. Results: Our AB-LDA and AB-CART approaches showed high diagnostic performance when determining SAHS and its severity. The assessment of different apnea-hypopnea index cutoffs using an independent test set derived into high accuracy: 86.5% (5 events/h), 86.5% (10 events/h), 81.0% (15 events/h), and 83.3% (30 events/h). These results widely outperformed those from logistic regression and a conventional event-detection algorithm applied to the same database. Conclusion: Our results suggest that AB applied to data from single-channel AF can be useful to determine SAHS and its severity. Significance: SAHS detection might be simplified through the only use of single-channel AF data.
    Palabras Clave
    AdaBoost (AB)
    airflow (AF)
    sleep apnea-hypopnea syndrome (SAHS)
    spectral analysis
    nonlinear analysis
    ISSN
    0018-9294
    Revisión por pares
    SI
    DOI
    10.1109/TBME.2015.2467188
    Patrocinador
    This work was supported by the Proyecto Cero 2011 on Ageing from Fundación General CSIC, the project TEC2011-22987 from Ministerio de Economía y Competitividad, the project VA059U13 from the Consejería de Educación de la Junta de Castilla y León, and FEDER. The work of G. C. Gutiérrez-Tobal was supported by a PIRTU grant from the Consejería de Educación de la Junta de Castilla y León and the European Social Fund.
    Version del Editor
    https://ieeexplore.ieee.org/document/7185342
    Propietario de los Derechos
    © 2015 IEEE
    Idioma
    eng
    URI
    https://uvadoc.uva.es/handle/10324/65595
    Tipo de versión
    info:eu-repo/semantics/acceptedVersion
    Derechos
    restrictedAccess
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