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Optical blood pressure estimation with photoplethysmography and FFT-based neural networks

机译:用光电容积描记法和基于FFT的神经网络估算血压

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摘要

We introduce and validate a beat-to-beat optical blood pressure (BP) estimation paradigm using only photoplethysmogram (PPG) signal from finger tips. The scheme determines subject-specific contribution to PPG signal and removes most of its influence by proper normalization. Key features such as amplitudes and phases of cardiac components were extracted by a fast Fourier transform and were used to train an artificial neural network, which was then used to estimate BP from PPG. Validation was done on 69 patients from the MIMIC II database plus 23 volunteers. All estimations showed a good correlation with the reference values. This method is fast and robust, and can potentially be used to perform pulse wave analysis in addition to BP estimation.
机译:我们仅使用来自指尖的光电容积描记图(PPG)信号介绍并验证逐次搏动光学血压(BP)估计范例。该方案确定受试者对PPG信号的特定贡献,并通过适当的归一化消除其大部分影响。通过快速傅立叶变换提取诸如心脏成分的幅度和相位之类的关键特征,并将其用于训练人工神经网络,然后将其用于从PPG估计BP。对来自MIMIC II数据库的69名患者和23名志愿者进行了验证。所有估计值均与参考值具有良好的相关性。该方法快速且健壮,除BP估计外,还可潜在地用于执行脉搏波分析。

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