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Publication

Robust automated cardiac arrhythmia detection in ECG beat signals

Title
Robust automated cardiac arrhythmia detection in ECG beat signals
Type
Article in International Scientific Journal
Year
2018-02
Authors
Victor Hugo C. de Albuquerque
(Author)
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Thiago M. Nunes
(Author)
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Danillo R. Pereira
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Eduardo José da S. Luz
(Author)
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David Menotti
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João P. Papa
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João Manuel R. S. Tavares
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Journal
Vol. 29 No. 3
Pages: 679-693
ISSN: 0941-0643
Publisher: Springer Nature
Indexing
Scientific classification
CORDIS: Technological sciences
FOS: Medical and Health sciences
Other information
Authenticus ID: P-00K-N5W
Resumo (PT):
Abstract (EN): Nowadays, millions of people are affected by heart diseases worldwide, whereas a considerable amount of them could be aided through an electrocardiogram (ECG) trace analysis, which involves the study of arrhythmia impacts on electrocardiogram patterns. In this work, we carried out the task of automatic arrhythmia detection in ECG patterns by means of supervised machine learning techniques, being the main contribution of this paper to introduce the optimum-path forest (OPF) classifier to this context. We compared six distance metrics, six feature extraction algorithms and three classifiers in two variations of the same dataset, being the performance of the techniques compared in terms of effectiveness and efficiency. Although OPF revealed a higher skill on generalizing data, the support vector machines (SVM)-based classifier presented the highest accuracy. However, OPF shown to be more efficient than SVM in terms of the computational time for both training and test phases.
Language: English
Type (Professor's evaluation): Scientific
No. of pages: 15
Documents
File name Description Size
NCAA-D-15-01334 Paper Draft 230.61 KB
paper 1st Page 148.91 KB
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