Please use this identifier to cite or link to this item: https://dspace.upt.ro/xmlui/handle/123456789/1563
Title: The classification of electrocardiographic signal (ECG) perturbed by noise using the wavelet theory [articol]
Authors: Stolojescu, Cristina Laura
Subjects: ECG
Daubechies wavelets
Multiresolution analysis
Statistical analysis
Issue Date: 2008
Publisher: Timişoara : Editura Politehnica
Citation: Stolojescu, Cristina Laura. The classification of electrocardiographic signal (ECG) perturbed by noise using the wavelet theory. Timişoara: Editura Politehnica, 2008
Series/Report no.: Seria electronică şi telecomunicaţii;Tom 53(67), fasc. 2 (2008)
Abstract: ECG signal is a non-stationary signal meaning that it changes its statistical proprieties over time. Therefore, the most powerful tool for analyzing this type of signals is the wavelet theory. The aim of this paper is to classify the ECG signals belonging to a given database in four classes: one class for ECGs without noise and three classes corresponding to ECGs perturbed by three types of noise. The Discrete Wavelet Transform and Daubechies wavelets were used to filter and analyze the four types of signals. The ECG data is taken from the standard MIT-BIH Arrhythmia database, while the signals of noise belong to MIT-BIH Noise Stress Test Database. Various tests were elaborated in this sense and the method used was the descriptive statistics.
URI: http://primo.upt.ro:1701/primo-explore/search?query=any,contains,The%20classification%20of%20electrocardiographic%20signal%20(ECG)%20perturbed%20by%20noise%20using%20the%20wavelet%20theory&tab=default_tab&search_scope=40TUT&vid=40TUT_V1&lang=ro_RO&offset=0 Link Primo
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