Baseline Wander Estimation for ECG Characterization
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Abstract
Baseline wander makes ECG characterization difficult since it makes manual
and automatic analysis of ECG difficult, especially the measuring of ST-segment
deviation. The removing of baseline wander from ECG can cause distortion of
important clinical information since the spectrum of baseline wander and low
frequency component of ECG signal usually overlaps. The aim of this study is to use
wavelet packet analysis for estimation of ECG baseline wander. The main reasons for
using wavelet transform are the properties of good representation non-stationary
signal such as ECG signal and the possibility of dividing the signal into different
bands of frequency. To test the propose method, ECG signals taken from MIT-BIH
arrhythmia database are used. The method had been compared with traditional
methods such as moving average, median etc. on the artificially constructed ECG with
baseline wander. For the performance analysis we have use Percent Root Mean
Square Difference (PRD). Obtained results show that the wavelet transform approach
performs better than traditional methods.
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THAPAR UNIVERSITY
PATIALA – 147004
