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A Computationally Efficient Approach for ECG Signal Denoising and Data Compression

机译:ECG信号去噪和数据压缩的计算有效方法

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In this paper, a new approach to remove noise present in ECG signal is proposed. Baseline wander and high frequency noise is eliminated by using computationally efficient linear phase filter ie. interpolated finite impulse response (IFIR) filter. The IFIR filter is designed by using Kaiser window function to achieve high stop band attenuation. As compared to other methods, the technique presented could achieve a reduction in computational complexity by 80.14 percent. Data compression is also performed in this study using wavelet packet decomposition along with Run-length encoding. Run-length encoding is used to improve the compression performance. For evaluation of the performance of IFIR filter, computational cost reduction (CRC) parameter is used, which directly depended on multipliers and adders. Different fidelity factors are considered to evaluate the performance of the proposed data compression method, viz., compression ratio (CR), signal to noise ratio (SNR), retained energy (RE) and percent root mean square difference (PRD), their magnitude being 25.13, 38.93, 99.10 and 1.75, respectively. MIT-BIH arrhythmia database has been utilized to judge the entire set of computations mentioned above noise removal and ECG signal compression. This work also includes beat detection of original and reconstructed signals. Simulated results show that decompressed signal is a replica of the input signal.
机译:在本文中,一种新的方法来消除噪声存在于ECG信号被提出。基线变动和高频噪声通过使用计算高效的线性相位滤波器,即消除。内插的有限脉冲响应(IFIR)滤波器。所述IFIR滤波器是通过使用Kaiser窗函数,以实现高的阻带衰减而设计。相比于其他的方法,该技术可呈现由80.14%的实现计算复杂度的降低。数据压缩在本研究中使用小波包分解与运行长度编码沿着还执行。运行长度编码用于改善的压缩性能。对于IFIR过滤器的性能的评价中,计算成本减少(CRC)参数被使用,其直接取决于乘法器和加法器。不同保真度的因素被认为是评估所提出的数据压缩方法的性能,即,压缩比(CR),信噪比(SNR),保持能量(RE)和百分比根均方差(PRD),其大小为25.13,38.93,99.10分别和1.75。 MIT-BIH心律失常数据库已经用来判断整个组上述噪声去除和ECG信号压缩提及的计算的。这项工作还包括原始和重构信号的节拍检测。模拟结果表明,解压缩的信号是输入信号的复制品。

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