基于盲源分离的输入模式和输出模式自适应滤波器的胎儿心电提取

IF 1.7 Q2 Engineering
L. Taha, E. Abdel-Raheem
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引用次数: 20

摘要

本文提出了两种新的胎儿心电图(ECG)信号分离方法,分别使用输入模式自适应滤波器和输出模式自适应滤波器。这两种方法都使用递归最小二乘(RLS)和最小均方(LMS)算法以及单个参考生成块。在IMAF中,滤波器的主要输入直接连接到腹部信号。参考信号是通过根据QRS MECG脉冲的位置对腹部信号进行开窗而产生的。在OMAF中,滤波器的主输入连接到盲源分离块的输出级。根据提取的MECG信号的QRS脉冲的位置,通过对来自BSS输出的原始FECG信号进行加窗来生成参考信号。我们选择了零空间幂等变换矩阵(NSITM)作为本文中使用的BSS算法。来自真实Daisy和Physionet数据库的结果显示了FECG信号的成功提取。使用OMAF从Physionet数据库合成数据的结果显示,当胎儿与母体的信噪比(fmSNR)从−30增加到0dB时,与NSITM和IMAF相比,提取性能显著提高。该研究表明OMAF是一种可行的FECG提取算法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fetal ECG Extraction Using Input-Mode and Output-Mode Adaptive Filters With Blind Source Separation
This article presents two new approaches of fetal electrocardiogram (ECG) signal (FECG) separation using the input-mode adaptive filter (IMAF) and the output-mode adaptive filter (OMAF). Both approaches use the recursive least-squares (RLS) and the least-mean-squares (LMS) algorithms and a single-reference-generation block. In the IMAF, the filter’s primary input is connected directly to the abdominal signal. The reference signal is generated by windowing the abdominal signal according to the locations of the QRS MECG pulses. In the OMAF, the filter’s primary input is connected to the output stage of a blind source separation block. The reference signal is generated by windowing the raw FECG signal, from the BSS output, according to the locations of the QRS pulses of the extracted MECG signal. We selected the null space idempotent transformation matrix (NSITM) as the BSS algorithm used in this work. Results from real Daisy and Physionet databases show the successful extraction of the FECG signal. Results from synthesized data from Physionet databases, using OMAF, show considerable improvement in extraction performances over NSITM and IMAF when the fetal-to-maternal signal-to-noise ratio (fmSNR) increases from −30 to 0 dB. This study demonstrated that the OMAF is a feasible algorithm for FECG extraction.
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来源期刊
自引率
0.00%
发文量
27
期刊介绍: The Canadian Journal of Electrical and Computer Engineering (ISSN-0840-8688), issued quarterly, has been publishing high-quality refereed scientific papers in all areas of electrical and computer engineering since 1976
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