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A phonocardiographic-based fiber-optic sensor and adaptive filtering system for noninvasive continuous fetal heart rate monitoring

机译:基于心电图的光纤传感器和自适应滤波系统,用于无创连续胎儿心率监测

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摘要

This paper focuses on the design, realization, and verification of a novel phonocardiographic-based fiber-optic sensor and adaptive signal processing system for noninvasive continuous fetal heart rate (fHR) monitoring. Our proposed system utilizes two Mach-Zehnder interferometeric sensors. Based on the analysis of real measurement data, we developed a simplified dynamic model for the generation and distribution of heart sounds throughout the human body. Building on this signal model, we then designed, implemented, and verified our adaptive signal processing system by implementing two stochastic gradient-based algorithms: the Least Mean Square Algorithm (LMS), and the Normalized Least Mean Square (NLMS) Algorithm. With this system we were able to extract the fHR information from high quality fetal phonocardiograms (fPCGs), filtered from abdominal maternal phonocardiograms (mPCGs) by performing fPCG signal peak detection. Common signal processing methods such as linear filtering, signal subtraction, and others could not be used for this purpose as fPCG and mPCG signals share overlapping frequency spectra. The performance of the adaptive system was evaluated by using both qualitative (gynecological studies) and quantitative measures such as: Signal-to-Noise Ratio-SNR, Root Mean Square Error-RMSE, Sensitivity-S+, and Positive Predictive Value-PPV.
机译:本文重点研究用于非侵入性连续胎儿心率(fHR)监测的新型基于心动图的光纤传感器和自适应信号处理系统的设计,实现和验证。我们提出的系统利用了两个马赫曾德尔干涉仪传感器。基于对实际测量数据的分析,我们开发了一个简化的动态模型,用于在整个人体中生成和分配心音。在此信号模型的基础上,我们通过实现两种基于随机梯度的算法:最小均方算法(LMS)和归一化最小均方算法(NLMS),设计,实现和验证了自适应信号处理系统。通过此系统,我们能够通过执行fPCG信号峰值检测,从高质量的胎儿心动图(fPCG)中提取fHR信息,并从腹部母体心动图(mPCGs)中过滤掉这些信息。由于fPCG和mPCG信号共享重叠的频谱,因此无法使用诸如线性滤波,信号减法之类的常用信号处理方法来实现此目的。自适应系统的性能通过定性(妇科研究)和定量措施进行评估,例如:信噪比-SNR,均方根误差-RMSE,灵敏度-S +和正预测值-PPV。

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