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Continuous Blood Pressure Estimation Using Exclusively Photopletysmography by LSTM-Based Signal-to-Signal Translation

机译:使用基于LSTM的信号到信号转换使用专门的PhotoPlylyScography使用的连续血压估计

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摘要

Monitoring continuous BP signal is an important issue, because blood pressure (BP) varies over days, minutes, or even seconds for short-term cases. Most of photoplethysmography (PPG)-based BP estimation methods are susceptible to noise and only provides systolic blood pressure (SBP) and diastolic blood pressure (DBP) prediction. Here, instead of estimating a discrete value, we focus on different perspectives to estimate the whole waveform of BP. We propose a novel deep learning model to learn how to perform signal-to-signal translation from PPG to arterial blood pressure (ABP). Furthermore, using a raw PPG signal only as the input, the output of the proposed model is a continuous ABP signal. Based on the translated ABP signal, we extract the SBP and DBP values accordingly to ease the comparative evaluation. Our prediction results achieve average absolute error under 5 mmHg, with 70% confidence for SBP and 95% confidence for DBP without complex feature engineering. These results fulfill the standard from Association for the Advancement of Medical Instrumentation (AAMI) and the British Hypertension Society (BHS) with grade A. From the results, we believe that our model is applicable and potentially boosts the accuracy of an effective signal-to-signal continuous blood pressure estimation.
机译:监测连续BP信号是一个重要问题,因为短期案例的血压(BP)变化超过日期,分钟甚至秒。基数的光增性血晶摄影(PPG)的基于BP估计方法易受噪声的影响,并且仅提供收缩压(SBP)和舒张压(DBP)预测。这里,而不是估计离散值,我们专注于不同的视角来估计BP的整个波形。我们提出了一种新颖的深度学习模型,以了解如何从PPG对动脉血压(ABP)执行信号到信号转换。此外,仅使用原始PPG信号作为输入,所提出的模型的输出是连续ABP信号。基于翻译的ABP信号,我们相应地提取SBP和DBP值以简化比较评估。我们的预测结果实现了5 mmhg下的平均绝对误差,对SBP的70%信心和对没有复杂的特征工程的DBP充满95%的信心。这些结果符合医疗仪器(AAMI)和英国高血压协会(BHS)协会的标准与A级。从结果中,我们认为我们的模型适用,可能会提高有效信号的准确性 - 持续连续血压估计。

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