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Muscle and Baseline Wander Artifact Reduction in ECG Signal Using Efficient RLS Based Adaptive Algorithm

机译:基于有效RLS的自适应算法减少ECG信号中的肌肉和基线漂移假象

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When we acquiring the Electrocardiogram (ECG) signal from the person, the signal amplitude (PQRST) and timing values are changes due to various artefacts. The different artefacts are Baseline wander, power line interference, muscle artefact, motion artefact and the channel noise also added sometimes during the transmission of the signal for diagnosis purpose. The adaptive filters play vital role for reduction of noise in the desired signals. In this paper we proposed, block based error normalized Recursive Least Square (RLS) adaptive algorithm and sign based RLS adaptive algorithm, which are used for reduction of muscle artifact noise and base line wander noise in the ECG signal. From the simulation result we analyzed that, comparing to Least Mean Square algorithm, the proposed RLS algorithm gives fast convergence rate with high signal to noise ratio and less mean square error.
机译:当我们从人那里获取心电图(ECG)信号时,信号幅度(PQRST)和定时值会由于各种伪影而发生变化。不同的伪像是“基线漂移”,电源线干扰,肌肉伪像,运动伪像以及有时在信号传输过程中为诊断目的而添加的通道噪声。自适应滤波器对于减少所需信号中的噪声起着至关重要的作用。在本文中,我们提出了基于块的误差归一化递归最小二乘(RLS)自适应算法和基于符号的RLS自适应算法,用于减少ECG信号中的肌肉伪影噪声和基线漂移噪声。从仿真结果可以看出,与最小均方算法相比,所提出的RLS算法具有较高的信噪比和较小的均方误差,具有较高的收敛速度。

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