DocumentCode :
384634
Title :
Wavelet-neural processing for computer aided diagnosis
Author :
Carranza, R. ; Andina, D.
Volume :
13
fYear :
2002
fDate :
2002
Firstpage :
215
Lastpage :
220
Abstract :
This paper propose to apply the wavelet transform theory in the analysis of electrocardiogram signals (ECG) for the detection of particular spikes present in the Chagas´ ECG. These signals are non-stationary, having spectral features that change in time due to unpredictable events, a fact that makes wavelet transform suitable for signal analysis and segmentation. After the wavelet preprocessing, neural networks are a useful tool for automatic classification of ECG and to provide experts with an inherent estimation of the probability of symptoms of Chagas´ infection.
Keywords :
cardiology; electrocardiography; medical diagnostic computing; medical signal processing; neural nets; pattern classification; wavelet transforms; Chagas disease; ECG; electrocardiogram signals; medical signal analysis; neural networks; pattern classification; signal segmentation; spikes; wavelet transform; Cardiac disease; Cardiology; Cardiovascular diseases; Electrocardiography; Heart; Neural networks; Parasitic diseases; Signal analysis; Wavelet analysis; Wavelet transforms;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Automation Congress, 2002 Proceedings of the 5th Biannual World
Print_ISBN :
1-889335-18-5
Type :
conf
DOI :
10.1109/WAC.2002.1049547
Filename :
1049547
Link To Document :
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