一种改进的自适应周期段矩阵处理心电信号检测中的肌电信号伪影

Xing Liu, Zhiming Long, Zhuqing Wang
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摘要

提出了一种基于奇异值分解(SVD)的心电去噪方法,用于肌电信号伪影的去除。不同于传统方法如离散小波变换和经典带通滤波器通过频域重叠的微弱降噪性能,本文提出了一种改进的自适应矩阵构造方法来去除肌电图,实现高信噪比,首先将心电信号分割成若干次心跳来构造轨迹矩阵;然后对轨迹矩阵进行奇异值分解;最后,将决策规则用于重构清晰信号,并在MIT-BIH心律失常数据库上对该方法进行了评估,结果表明该方法获得了较高的信噪比输出和较低的信号失真。
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An Improved Adaptive Periodical Segment Matrix for Processing EMG Artifacts in ECG Signal Detection
This paper proposed a new ECG denoising approach based on singular value decomposition (SVD) for EMG (electromyogram) artifacts reduction. Unlike the traditional method like discrete wavelet transform and classical bandpass filter weakly noise reduction performance by frequency domain overlapping, we propose to remove EMG by an improved adaptive matrix construction and achieve high signal to noise ratio (SNR), the ECG signal were firstly spitted a number of heartbeats to construct the trajectory matrix; then the trajectory matrix was decomposed by SVD; at last, the decision rules used to reconstruct the clear signal, the proposed method is evaluated on the MIT-BIH arrhythmia database, the result shows our method attain a high improvement of signal to noise ratio output (SNR) and lower signal distortion.
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