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胎儿心音单道信号处理方法的比较研究。

A comparative study of single-channel signal processing methods in fetal phonocardiography.

机构信息

Department of Cybernetics and Biomedical Engineering, Faculty of Electrical Engineering and Computer Science, VSB-Technical University of Ostrava, Ostrava, Czechia.

Department of Applied Mathematics, Faculty of Electrical Engineering and Computer Science, VSB-Technical University of Ostrava, Ostrava, Czechia.

出版信息

PLoS One. 2022 Aug 19;17(8):e0269884. doi: 10.1371/journal.pone.0269884. eCollection 2022.

Abstract

Fetal phonocardiography is a non-invasive, completely passive and low-cost method based on sensing acoustic signals from the maternal abdomen. However, different types of interference are sensed along with the desired fetal phonocardiography. This study focuses on the comparison of fetal phonocardiography filtering using eight algorithms: Savitzky-Golay filter, finite impulse response filter, adaptive wavelet transform, maximal overlap discrete wavelet transform, variational mode decomposition, empirical mode decomposition, ensemble empirical mode decomposition, and complete ensemble empirical mode decomposition with adaptive noise. The effectiveness of those methods was tested on four types of interference (maternal sounds, movement artifacts, Gaussian noise, and ambient noise) and eleven combinations of these disturbances. The dataset was created using two synthetic records r01 and r02, where the record r02 was loaded with higher levels of interference than the record r01. The evaluation was performed using the objective parameters such as accuracy of the detection of S1 and S2 sounds, signal-to-noise ratio improvement, and mean error of heart interval measurement. According to all parameters, the best results were achieved using the complete ensemble empirical mode decomposition with adaptive noise method with average values of accuracy = 91.53% in the detection of S1 and accuracy = 68.89% in the detection of S2. The average value of signal-to-noise ratio improvement achieved by complete ensemble empirical mode decomposition with adaptive noise method was 9.75 dB and the average value of the mean error of heart interval measurement was 3.27 ms.

摘要

胎儿心音听诊是一种基于从母体腹部感知声信号的非侵入性、完全被动和低成本方法。然而,与期望的胎儿心音听诊一起,还会感知到不同类型的干扰。本研究重点比较了使用八种算法(Savitzky-Golay 滤波器、有限脉冲响应滤波器、自适应小波变换、最大重叠离散小波变换、变分模态分解、经验模态分解、集合经验模态分解和完全集合经验模态分解与自适应噪声)对胎儿心音听诊进行滤波。这些方法的有效性在四种干扰类型(母体声音、运动伪影、高斯噪声和环境噪声)和这四种干扰的十一种组合上进行了测试。数据集是使用两个合成记录 r01 和 r02 创建的,其中记录 r02 加载的干扰水平高于记录 r01。评估使用了客观参数,如 S1 和 S2 声音检测的准确性、信噪比提高和心率间隔测量的平均误差。根据所有参数,使用完全集合经验模态分解与自适应噪声方法的结果最佳,S1 检测的准确率平均值为 91.53%,S2 检测的准确率平均值为 68.89%。完全集合经验模态分解与自适应噪声方法的信噪比提高平均值为 9.75dB,心率间隔测量的平均误差平均值为 3.27ms。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/53cb/9390939/e22f1686c012/pone.0269884.g001.jpg

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