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Research on denoising algorithm for ECG signals

机译:心电信号降噪算法研究

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In the course of collecting ECG signal data, electromyography interference, baseline drift and 50Hz power line interference will be introduced inevitably, which often makes it difficult to identify the characteristics of ECG signals to some degree by using conventional identification methods. Median filter, a nonlinear signal filter with simple operation and high speed, is used to remove the low-frequencies noises in Electrocardiogram signals, such as baseline drift. Because the dyadic wavelet of WTS is a set of band-pass filters having different frequency bands in every scale, the wavelet transformation was selected to decompose the original signals. An interference-eliminated ECG signal was formed by reconstruction from the changed coefficients of wavelet. A simulation experiment is adopted to make it sure how to determine the self-adaptive threshold selections, the proper decomposition order and wavelet functions. The method was tested by using both ECG signals from MIT/BIH database and ECG signals generated via computer simulation. The results show that the algorithm can suppress the main noises existing in ECG signals efficiently and can satisfy the requirements of clinical analysis and diagnosis on ECG waveforms.
机译:在采集心电信号数据的过程中,不可避免地会引入肌电图干扰,基线漂移和50Hz电力线干扰,这往往使得采用传统的识别方法很难在一定程度上识别心电信号的特征。中值滤波器是一种操作简单,速度快的非线性信号滤波器,用于消除心电图信号中的低频噪声,例如基线漂移。由于WTS的二进小波是在每个尺度上具有不同频带的一组带通滤波器,因此选择小波变换来分解原始信号。通过改变后的小波系数重构,形成了消除干扰的心电信号。通过仿真实验来确定如何确定自适应阈值选择,适当的分解阶数和小波函数。通过使用来自MIT / BIH数据库的ECG信号和通过计算机仿真生成的ECG信号,对该方法进行了测试。结果表明,该算法可以有效地抑制心电信号中存在的主要噪声,满足临床分析和诊断心电波形的要求。

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