DocumentCode :
1877090
Title :
Performance study of adaptive filtering and noise cancellation of artifacts in ECG signals
Author :
Khalaf, Ashraf A. M. ; Ibrahim, Mostafa M. ; Hamed, Hesham F. A.
Author_Institution :
Dept. of Electron. & Commun. Eng., Minia Univ., Minia, Egypt
fYear :
2015
fDate :
1-3 July 2015
Firstpage :
394
Lastpage :
401
Abstract :
In Electrocardiogram (ECG) application, we face various types of artifacts added to the ECG signal. Different Researchers have been interested in this problem due to its importance. In this paper we introduce a study of different algorithms and their effects on the performance of the ECG noise canceller. We have used many kinds of algorithms such as: LMS (Least Mean Square), NLMS (Normalized Least Mean Square), Signed Regressor LMS (SRLMS), Sign LMS (SLMS), Sign-Sign LMS (SSLMS) and a new proposed modified LMS called Variable Step size Least Mean Square (VSLMS) using MATLAB software package as well as Unbiased Linear output Neural Network (ÜLNN) and Unbiased Non Linear output Neural Network (UNLNN). It is promising to clarify the difference among these algorithms with the aim of obtaining better performance.
Keywords :
electrocardiography; filtering theory; interference suppression; least mean squares methods; medical signal processing; neural nets; regression analysis; ECG noise canceller; ECG signals; MATLAB software package; NLMS; SRLMS; SSLMS; ULNN; UNLNN; VSLMS; adaptive filtering; electrocardiogram; noise cancellation; normalized least mean square; sign-sign LMS; signed regressor LMS; unbiased linear output neural network; unbiased nonlinear output neural network; variable step size least mean square; Adaptive filters; Electrocardiography; Filtering; Least squares approximations; Noise cancellation; Signal to noise ratio; ECG signal; LMS; adaptive noise canceller; artifacts; neural network;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Advanced Communication Technology (ICACT), 2015 17th International Conference on
Conference_Location :
Seoul
Print_ISBN :
978-8-9968-6504-9
Type :
conf
DOI :
10.1109/ICACT.2015.7224826
Filename :
7224826
Link To Document :
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