Certain investigations on ECG signal processing for stress analysis
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Abstract
Electrocardiogram a noninvasive technique is used as a primary diagnostic tool for cardiovascular diseases A cleaned ECG signal provides necessary information about the electrophysiology of the heart diseases and ischemic changes that may occur It gives valuable information about the functional aspects of the heart and cardiovascular system The idea of the thesis is to automatic detection of cardiac arrhythmias in ECG signal
newlineWindows wavelets and fuzzy clustering signal processing techniques are used in this thesis for detection of cardiac arrhythmias The detection of cardiac arrhythmias in the ECG signal consists of following stages detection of RR interval in ECG signal feature extraction from detected RR interval classification of beats using extracted feature set from RR interval In turn automatic classification of heartbeats represents the automatic detection of cardiac arrhythmias in ECG signal This thesis investigates the development
newlineof appropriate HRV signal processing techniques in the context of pilot studies in two fields of potential application smoker and Non smoker RR interval detection is the first step towards automatic detection of cardiac arrhythmias in ECG signal A Lab view based ECG recording is proposed in chapter 3 of this thesis The detection of RR interval from continuous ECG signal is computed using windows and wavelet based technique in chapter4
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