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Experimental study: brachial motion artifact reduction in the ECG

机译:实验研究:ECG中的肱动画伪影减少

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This study focuses on a dual-input adaptive noise reduction technique by investigation of brachial motion artifact in the ECG under a special experimental protocol. The ECG and motion artifact signals are acquired from a three-electrode system. Primary input is obtained from the standard EGG lead II. Because limbs function like fixed resistors in ECG measurement, we obtain EGG-free brachial motion noise between two electrodes located on the arm, near the right biceps muscle. The separation distance of the electrodes is 5 mm to acquire the motion noise signal, and this signal is the auxiliary input for adaptive filtering. The results show that the LMS algorithm has a very slow rate of convergence. Comparatively, an RLS algorithm converges almost immediately once motion artifact appears and performs satisfactorily in reducing even rapidly varying brachial artifact. It also significantly improves the low-frequency baseline drift. Although the RLS algorithm imposes a large computational burden, a 33-MHz PC486 can execute the algorithm, written in C language, in real time. To prevent the ill-conditioning matrix in the RLS algorithm when the noise is very small, we add white noise to the auxiliary input The experiment shows that this approach can significantly improve the condition of the matrix.
机译:本研究专注于通过在特殊实验方案下调查ECG中的肱动画伪影进行双输入自适应降噪技术。从三个电极系统获取ECG和运动伪影信号。主要输入是从标准卵铅II获得的。由于肢体在心电图测量中的固定电阻等固定电阻,因此我们在位于臂上的两个电极之间获得免费的臂运动噪声,靠近右二头肌肌肉。电极的分离距离为5mm以获取运动噪声信号,并且该信号是自适应滤波的辅助输入。结果表明,LMS算法具有非常慢的收敛速度。相比之下,RLS算法几乎立即收敛一旦运动伪像出现并且在减少甚至迅速变化的臂章伪影时令人满意地进行。它也显着提高了低频基线漂移。尽管RLS算法施加了大的计算负担,但是33 MHz PC486可以实时执行以C语言编写的算法。为了防止在RLS算法中的不良调节矩阵时噪声非常小,我们向辅助输入添加白噪声实验表明这种方法可以显着改善矩阵的状况。

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