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Evidence-based prediction of atrial fibrillation using physiological signals

  • Mroueh Mohamed
  • , Farah Mourad Chehade
  • , Fahed Abdallah

Résultats de recherche: Le chapitre dans un livre, un rapport, une anthologie ou une collectionChapterRevue par des pairs

Résumé

Atrial Fibrillation is an irregularity in heart beats increasing occurrence of heart failure strokes dementia and other serious diseases. The goal of this study is to predict Atrial Fibrillation using physiological signals of patients. Easily measured using non-invasive sensors these signals include Heart Rate Respiratory Rate Peripheral Oxygen Saturation Pulse and Central Venous Pressure. In order to predict the occurrence of Atrial Fibrillation the proposed approach consists of extracting several parameters from signals and then constructing a decision rule that combines evidence based on the belief functions theory. The data used in this study are provided by the MIMIC III medical database. The classifier obtained is able to predict the Atrial Fibrillation with an accuracy of 70.49% a sensitivity of 77.07% and a specificity of 63.9%.
langue originaleAnglais
titreBioSMART 2019 - Proceedings: 3rd International Conference on Bio-Engineering for Smart Technologies
EditeurInstitute of Electrical and Electronics Engineers Inc.
ISBN (imprimé)9781728135786
Les DOIs
étatPublié - 1 avr. 2019
Modification externeOui

Série de publications

NomBioSMART 2019 - Proceedings: 3rd International Conference on Bio-Engineering for Smart Technologies

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