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首页> 外文期刊>Journal of medical systems >Toward Hypertension Prediction Based on PPG-Derived HRV Signals: a Feasibility Study
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Toward Hypertension Prediction Based on PPG-Derived HRV Signals: a Feasibility Study

机译:基于PPG衍生的HRV信号的高血压预测:可行性研究

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Heart rate variability (HRV) is often used to assess the risk of cardiovascular disease, and data on this can be obtained via electrocardiography (ECG). However, collecting heart rate data via photoplethysmography (PPG) is now a lot easier. We investigate the feasibility of using the PPG-based heart rate to estimate HRV and predict diseases. We obtain three months of PPG-based heart rate data from subjects with and without hypertension, and calculate the HRV based on various forms of time and frequency domain analysis. We then apply a data mining technique to this estimated HRV data, to see if it is possible to correctly identify patients with hypertension. We use six HRV parameters to predict hypertension, and find SDNN has the best predictive power. We show that early disease prediction is possible through collecting one's PPG-based heart rate information.
机译:心率变异性(HRV)通常用于评估心血管疾病的风险,并且可以通过心电图(ECG)获得对此的数据。 然而,通过PhotoPrishysMography(PPG)收集心率数据现在更容易。 我们调查使用基于PPG的心率来估算HRV和预测疾病的可行性。 我们从具有和无高血压的受试者获得三个月的基于PPG的心率数据,并根据各种形式的时间和频域分析计算HRV。 然后,我们将数据挖掘技术应用于该估计的HRV数据,以了解是否可以正确识别高血压患者。 我们使用六个HRV参数来预测高血压,发现SDNN具有最佳的预测力。 我们表明,通过收集基于PPG的心率信息,可以进行早期疾病预测。

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