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Non-Adaptive Methods of Fetal ECG Signal Processing

机译:胎儿心电信号处理的非自适应方法

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Abdominal fetal ElectroCardioGrams (fECGs) carry a wealth of information about the fetus including fetal Heart Rate (fHR) and signal morphology during different stages of pregnancy. Here we report our results on the implementation and evaluation of two non-adaptive signal processing methods suitable for fECG signal extraction, namely: the Independent Component Analysis (ICA) and the Principal Component Analysis (PCA) Methods. We used the fetal heart rate extracted from fECG signals (in Beats Per Minute - BPM) and Signal-to-Noise Ratio (SNR) as effective performance evaluation metrics for our applied methods. Our findings demonstrated that given adequate SNR, these methods produced excellent results in accurate determination of fHR. Furthermore, we found out that compared to the PCA Method, the ICA Method produces a lower variance in the detection of the fHR.
机译:腹部胎儿心电图(fECG)携带有关胎儿的大量信息,包括妊娠不同阶段的胎儿心率(fHR)和信号形态。在这里,我们报告了两种适用于fECG信号提取的非自适应信号处理方法的实施和评估结果,即独立分量分析(ICA)和主分量分析(PCA)方法。我们使用从fECG信号(每分钟心跳数-BPM)中提取的胎儿心率和信噪比(SNR)作为我们应用方法的有效性能评估指标。我们的发现表明,在足够的SNR的情况下,这些方法在准确测定fHR方面产生了出色的结果。此外,我们发现,与PCA方法相比,ICA方法在fHR的检测中产生了较低的方差。

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