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Applications of adaptive filtering to ECG analysis: noise cancellation and arrhythmia detection

机译:自适应滤波在心电图分析中的应用:噪声消除和心律失常检测

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摘要

Several adaptive filter structures are proposed for noise cancellation and arrhythmia detection. The adaptive filter essentially minimizes the mean-squared error between a primary input, which is the noisy electrocardiogram (ECG), and a reference input, which is either noise that is correlated in some way with the noise in the primary input or a signal that is correlated only with ECG in the primary input. Different filter structures are presented to eliminate the diverse forms of noise: baseline wander, 60 Hz power line interference, muscle noise, and motion artifact. An adaptive recurrent filter structure is proposed for acquiring the impulse response of the normal QRS complex. The primary input of the filter is the ECG signal to be analyzed, while the reference input is an impulse train coincident with the QRS complexes. This method is applied to several arrhythmia detection problems: detection of P-waves, premature ventricular complexes, and recognition of conduction block, atrial fibrillation, and paced rhythm.
机译:提出了几种自适应滤波器结构用于噪声消除和心律失常检测。自适应滤波器从本质上最小化了噪声输入心电图(ECG)的主要输入与参考输入之间的均方误差,该参考输入要么是以某种方式与主要输入中的噪声相关联的噪声,要么是仅与主要输入中的ECG相关。提出了不同的滤波器结构以消除各种形式的噪声:基线漂移,60 Hz电源线干扰,肌肉噪声和运动伪影。提出了一种自适应递归滤波器结构,用于获取正常QRS波群的脉冲响应。滤波器的主要输入是要分析的ECG信号,而参考输入是与QRS复数一致的脉冲序列。此方法适用于一些心律失常检测问题:P波检测,室性早搏,传导阻滞,心房颤动和节律的识别。

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