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A Comparison of Blink Removal Techniques in EEG Signals

  • Fernando Moncada [1] ; González, Víctor M. [1] ; Beatriz García [2] ; Víctor Álvarez [1] ; Villar, José R. [1] Árbol académico
    1. [1] Universidad de Oviedo

      Universidad de Oviedo

      Oviedo, España

    2. [2] Complejo Asistencial Universitario de Burgos

      Complejo Asistencial Universitario de Burgos

      Burgos, España

  • Localización: Hybrid Artificial Intelligent Systems: 16th International Conference, HAIS 2021. Bilbao, Spain. September 22–24, 2021. Proceedings / coord. por Hugo Sanjurjo González, Iker Pastor López Árbol académico, Pablo García Bringas Árbol académico, Héctor Quintián Pardo Árbol académico, Emilio Santiago Corchado Rodríguez Árbol académico, 2021, ISBN 978-3-030-86271-8, págs. 355-366
  • Idioma: inglés
  • Texto completo no disponible (Saber más ...)
  • Resumen
    • Blink detection and removal is a very challenging task that needs to be solved in order to perform several EEG signal analyses, especially when an online analysis is required. This study is focused on the comparison of three different techniques for blink detection and three more for blink removal; one of the techniques has been enhanced in this study by determining the dynamic threshold for each participant instead of having a common value. The experimentation first compares the blink detection and then, the best method is used for the blink removal comparison. A real data set has been gathered with healthy participants and a controlled protocol, so the eye blinks can be easily labelled. Results show that some methods performed surprisingly poor with the real data set. In terms of blink detection, the participant-tuned dynamic threshold was found better than the others in terms of Accuracy and Specificity, while comparable with the Correlation-based method. In terms of blink removal, the combined CCA+EEMD algorithm removes better the blink artifacts, but the DWT one is considerably faster than the others.


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