首页> 美国卫生研究院文献>Sensors (Basel Switzerland) >Using the Redundant Convolutional Encoder–Decoder to Denoise QRS Complexes in ECG Signals Recorded with an Armband Wearable Device
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Using the Redundant Convolutional Encoder–Decoder to Denoise QRS Complexes in ECG Signals Recorded with an Armband Wearable Device

机译:使用冗余卷积编码器 - 解码器在记录的ECG信号中剥去QRS复合物记录为臂带可穿戴设备

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摘要

Long-term electrocardiogram (ECG) recordings while performing normal daily routines are often corrupted with motion artifacts, which in turn, can result in the incorrect calculation of heart rates. Heart rates are important clinical information, as they can be used for analysis of heart-rate variability and detection of cardiac arrhythmias. In this study, we present an algorithm for denoising ECG signals acquired with a wearable armband device. The armband was worn on the upper left arm by one male participant, and we simultaneously recorded three ECG channels for 24 h. We extracted 10-s sequences from armband recordings corrupted with added noise and motion artifacts. Denoising was performed using the redundant convolutional encoder–decoder (R-CED), a fully convolutional network. We measured the performance by detecting R-peaks in clean, noisy, and denoised sequences and by calculating signal quality indices: signal-to-noise ratio (SNR), ratio of power, and cross-correlation with respect to the clean sequences. The percent of correctly detected R-peaks in denoised sequences was higher than in sequences corrupted with either added noise (70–100% vs. 34–97%) or motion artifacts (91.86% vs. 61.16%). There was notable improvement in SNR values after denoising for signals with noise added (7–19 dB), and when sequences were corrupted with motion artifacts (0.39 dB). The ratio of power for noisy sequences was significantly lower when compared to both clean and denoised sequences. Similarly, cross-correlation between noisy and clean sequences was significantly lower than between denoised and clean sequences. Moreover, we tested our denoising algorithm on 60-s sequences extracted from recordings from the Massachusetts Institute of Technology-Beth Israel Hospital (MIT-BIH) arrhythmia database and obtained improvement in SNR values of 7.08 ± 0.25 dB (mean ± standard deviation (sd)). These results from a diverse set of data suggest that the proposed denoising algorithm improves the quality of the signal and can potentially be applied to most ECG measurement devices.
机译:长期心电图(ECG)记录在执行正常日常惯例的同时通常用运动伪影损坏,从而又可以导致心率计算不正确。心率是重要的临床信息,因为它们可用于分析心率变异性和心律失常的检测。在本研究中,我们介绍了一种用于去携带臂架装置获取的ECG信号的算法。通过一个男性参与者在左上角佩戴臂章,我们同时记录了24小时的三个心电图声道。我们从添加噪声和运动伪影损坏的臂带记录中提取了10-S序列。使用冗余卷积编码器解码器(R-CED),全卷积网络进行去噪。我们通过检测干净,嘈杂和去噪序列中的R峰值并通过计算信号质量指标:信噪比(SNR),功率比和与清洁序列的互相关来测量性能。在脱氮序列中正确检测到的R峰的百分比高于损坏的噪声(70-100%vs.34-97%)或运动伪影(91.86%与61.16%)。对于添加噪声的信号(7-19 dB)的信号后,SNR值有显着改善,并且当序列用运动伪影(0.39 dB)损坏时。与清洁和去噪序列相比,噪声序列的功率比率显着降低。类似地,噪声和清洁序列之间的互相关显着低于去呼吸​​和清洁序列之间的互相关。我们测试了我们的去噪算法,从Massachusetts Technology-Beth以色列医院(MIT-BIH)心律失常数据库中的录音中提取的60秒序列,并获得了7.08±0.25 dB的SNR值的改进(平均值±标准偏差(SD) )))。这些来自多种数据的结果表明,所提出的去噪算法提高了信号的质量,并且可能应用于大多数ECG测量装置。

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