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Wavelet-based Techniques Applied to Digital Processing of ECG Signals

机译:基于小波的技术应用于ECG信号的数字处理

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Electrocardiogram (ECG) is an important biomedical signal for diagnosing heart diseases, but now it can have different other applications, such as using it as a stress recognition biomarker. Taking into account that the ECG signal is always overlapped with noise generated by muscles, body movement, electrodes skin contact, breathing and electronics, a de-noising stage must be added. This research paper analyzes and compares the noise removal by using different decomposition levels of undecimated wavelet transform (UWT) and discrete wavelet transform (DWT) based on different types of mother wavelets like orthogonal (Haar, Daubechies, Coiflets, Symmlet) and biorthogonal, whereas the other artifacts that are low frequency carriers have been already removed from the signal. During the analysis phase for each of the de-noising methods, several parameters are modified to check the accuracy and performance in a more elaborated way. The raw ECG data used in the study has been obtained by using a proposed data acquisition system.
机译:心电图(ECG)是一种用于诊断心脏病的重要生物医学信号,但现在它可以具有不同的其他应用,例如将其作为应力识别生物标志物。考虑到ECG信号始终与肌肉,身体运动,电极皮肤接触,呼吸和电子产品产生的噪声重叠,必须添加脱光阶段。本研究纸张分析并比较了使用不同类型的不同类型的母小波等不同类型的不同类型的不同类型的母小波来分析并比较噪声去除,如正交(Haar,Daubechies,Coiflet,Symmlet)和双正交,而已经从信号中删除了低频载波的另一个伪影。在每个去噪方法的分析阶段期间,修改了几个参数以以更详细的方式检查精度和性能。通过使用所提出的数据采集系统获得了该研究的原始ECG数据。

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