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Titre: | Atrial fibrillation delineation with wavelets |
Auteur(s): | Khelouia, Romeyssa Touil, Soumeya Daamouche, Abdelhamid (supervisor) |
Mots-clés: | Wavelets Electrocardiogram Atrial fibrillation |
Date de publication: | 2019 |
Résumé: | This report proposes a method to detect and classify two types of heart beat, namely Normal (N) beats and Atrial Fibrillation (AF) beats.
Each electrocardiogram (ECG) record is band-pass filtered, then segmented into beats to form the original features. After that, statistical features of the Discrete Wavelet Transform (DWT) approximation and detail coefficients of each beat constitute a feature. The RR intervals surrounding the beat are also used as features. Finally, extracted features are classified using a Support Vector Machines (SVM) classifier. The MIT-BIH atrial fibrillation and MIT-BIH arrhythmia databases are used to evaluate the performance of the proposed method.
Results from extensive experimentations appear very promising, with an accuracy of 98.2723%, a sensitivity of 98.3709%, and a specificity of 97.2313%. |
Description: | 59 p. |
URI/URL: | http://dlibrary.univ-boumerdes.dz:8080/handle/123456789/9619 |
Collection(s) : | Telecommunication
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