Arrhytmia classification with som
2006
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Advisor: Yrd. Doç. Dr. Mehmet Kuntalp
Abstract (EN)
The electrocardiogram carries a lot of clinical information for a cardiologist,especially the width or duration of the waves in the ECG are widely used to defineconduction in the heart and to stratify patients at risk of cardiac arrhythmia. Themanual annotation to the waves is a strenuous task; as a result several automatedmethods have been developed to relieve the cardiologist.This study presents an Artificial Neural Network using Self-Organizing Maparchitecture, the evaluation of its performance in the classification of QRS waves ofthe electrocardiogram (ECG) from patients with cardiac arrhythmias and theclassification of data from MIT/BIH Arrhythmia Database.
Author
Dr. Gonca Dayan
Institution

Dokuz Eylül University
Uygulamalı Matematik Bilim Dalı
How to Cite
Gonca Dayan (Master Thesis). Arrhytmia classification with som, 2006, Dokuz Eylül University.
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