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通过心电图和光电容积脉搏波信号进行高血压评估:使用MIMIC数据库的评估

Hypertension Assessment via ECG and PPG Signals: An Evaluation Using MIMIC Database.

作者信息

Liang Yongbo, Chen Zhencheng, Ward Rabab, Elgendi Mohamed

机构信息

School of Electrical Engineering, Guilin University of Electronic Technology, Guilin 541004, China.

School of Electrical and Computer Engineering, University of British Columbia, Vancouver, BC V6T 1Z4, Canada.

出版信息

Diagnostics (Basel). 2018 Sep 10;8(3):65. doi: 10.3390/diagnostics8030065.

Abstract

Cardiovascular diseases (CVDs) have become the biggest threat to human health, and they are accelerated by hypertension. The best way to avoid the many complications of CVDs is to manage and prevent hypertension at an early stage. However, there are no symptoms at all for most types of hypertension, especially for prehypertension. The awareness and control rates of hypertension are extremely low. In this study, a novel hypertension management method based on arterial wave propagation theory and photoplethysmography (PPG) morphological theory was researched to explore the physiological changes in different blood pressure (BP) levels. Pulse Arrival Time (PAT) and photoplethysmogram (PPG) features were extracted from electrocardiogram (ECG) and PPG signals to represent the arterial wave propagation theory and PPG morphological theory, respectively. Three feature sets, one containing PAT only, one containing PPG features only, and one containing both PAT and PPG features, were used to classify the different BP categories, defined as normotension, prehypertension, and hypertension. PPG features were shown to classify BP categories more accurately than PAT. Furthermore, PAT and PPG combined features improved the BP classification performance. The F1 scores to classify normotension versus prehypertension reached 84.34%, the scores for normotension versus hypertension reached 94.84%, and the scores for normotension plus prehypertension versus hypertension reached 88.49%. This indicates that the simultaneous collection of ECG and PPG signals could detect hypertension.

摘要

心血管疾病(CVDs)已成为人类健康的最大威胁,而高血压会加速这些疾病的发展。避免心血管疾病诸多并发症的最佳方法是在早期控制和预防高血压。然而,大多数类型的高血压,尤其是前期高血压,根本没有症状。高血压的知晓率和控制率极低。在本研究中,基于动脉波传播理论和光电容积脉搏波描记法(PPG)形态学理论,研究了一种新型高血压管理方法,以探索不同血压(BP)水平下的生理变化。分别从心电图(ECG)和PPG信号中提取脉搏波传导时间(PAT)和光电容积脉搏波(PPG)特征,以分别代表动脉波传播理论和PPG形态学理论。使用三个特征集,一个仅包含PAT,一个仅包含PPG特征,另一个同时包含PAT和PPG特征,对定义为正常血压、前期高血压和高血压的不同血压类别进行分类。结果表明,PPG特征对血压类别的分类比PAT更准确。此外,PAT和PPG的组合特征提高了血压分类性能。正常血压与前期高血压分类的F1分数达到84.34%,正常血压与高血压分类的分数达到94.84%,正常血压加前期高血压与高血压分类的分数达到88.49%。这表明同时采集ECG和PPG信号可以检测高血压。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6ab3/6163274/c5ad2d03b20a/diagnostics-08-00065-g001.jpg

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