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Automatic detection of QRS complexes in ECG signals collected from patients after cardiac surgery

机译:在心脏手术后患者收集的ECG信号中的QRS复合物的自动检测

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A novel automatic QRS detection algorithm that is based on a wavelet pre-filter and an adaptive threshold technique is presented. The algorithm utilizes a bi-orthogonal wavelet filter to de-noise the ECG signal. The QRS complexes are then identified by computing the first derivative of the signal and applying a set of adaptive thresholds that are not limited to a strict range. QRS complexes are identified in multiple ECG channels of a 5-lead configuration and an inter-channel comparison is performed to verify QRS locations. The algorithm was initially developed using ECG signals from Physionet website, but was later refined using ECG data collected from post cardiac surgery patients in the intensive care units. The proposed algorithm was able to detect QRS complexes with high sensitivity (99%) and specificity (99%) when compared to the algorithm used in Physionet ECG database. Additionally, the new algorithm can be implemented in real-time and can successfully detect QRS complexes for a wide variety of ECG shapes and characteristics often encountered in cardiac patients
机译:提出了一种基于小波预滤波器和自适应阈值技术的新型自动QRS检测算法。该算法利用双正交小波滤波器来解除ECG信号的噪声。然后通过计算信号的第一导数并应用不限于严格范围的一组自适应阈值来识别QRS复合物。在5引导配置的多个ECG通道中识别QRS复合物,并执行间间比较以验证QRS位置。该算法最初使用来自PhysioMet网站的ECG信号开发,但后来使用精密护理单位中的心脏手术患者收集的ECG数据进行了精制。与PhysoioNet ECG数据库中使用的算法相比,所提出的算法能够检测具有高灵敏度(> 99%)和特异性(> 99%)的QRS复合物。此外,新算法可以实时实现,可以成功检测QRS复合物,以获得各种各样的心电图形状,并且在心脏病患者中经常遇到的特征

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