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首页> 外文期刊>Biomedical and Health Informatics, IEEE Journal of >PCA-Based Multi-Wavelength Photoplethysmography Algorithm for Cuffless Blood Pressure Measurement on Elderly Subjects
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PCA-Based Multi-Wavelength Photoplethysmography Algorithm for Cuffless Blood Pressure Measurement on Elderly Subjects

机译:基于PCA的多波长光学质量分析算法,用于老年人的无齿状血压测量

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The prevalence of hypertension has made blood pressure (BP) measurement one of the most wanted functions in wearable devices for convenient and frequent self-assessment of health conditions. The widely adopted principle for cuffless BP monitoring is based on arterial pulse transit time (PTT), which is measured with electrocardiography and photoplethysmography (PPG). To achieve cuffless BP monitoring with more compact wearable electronics, we have previously conceived a multi-wavelength PPG (MWPPG) strategy to perform BP estimation from arteriolar PTT, requiring only a single sensing node. However, challenges remain in decoding the compounded MWPPG signals consisting of both heterogeneous physiological information and motion artifact (MA). In this work, we proposed an improved MWPPG algorithm based on principal component analysis (PCA) which matches the statistical decomposition results with the arterial pulse and capillary pulse. The arteriolar PTT is calculated accordingly as the phase shift based on the entire waveforms, instead of local peak lag time, to enhance the feature robustness. Meanwhile, the PCA-derived MA component is employed to identify and exclude the MA-contaminated segments. To evaluate the new algorithm, we performed a comparative experiment (N = 22) with a cuffless MWPPG measurement device and used double-tube auscultatory BP measurement as a reference. The results demonstrate the accuracy improvement enabled by the PCA-based operations on MWPPG signals, yielding errors of 1.44 +/- 6.89 mmHg for systolic blood pressure and -1.00 +/- 6.71 mm Hg for diastolic blood pressure. In conclusion, the proposed PCA-based method can improve the performance of MWPPG in wearable medical devices for cuffless BP measurement.
机译:高血压的患病率使血压(BP)测量可穿戴设备中最想要的功能之一,以方便,频繁的健康状况。广泛采用的诱齿BP监测原理基于动脉脉冲过渡时间(PTT),其用心电图和光学仪测量(PPG)测量。为了实现具有更紧凑的可穿戴电子产品的无齿状BP监控,我们先前已经构思了多波长PPG(MWPPG)策略来从Arteriolar PTT执行BP估计,只需要单个传感节点。然而,挑战仍然在解码由异质生理信息和运动伪影(MA)组成的复合的MWPPG信号中。在这项工作中,我们提出了一种基于主成分分析(PCA)的改进的MWPPG算法,其与动脉脉冲和毛细管脉冲匹配统计分解结果。相应地计算动脉轴PTT作为基于整个波形的相移,而不是局部峰值滞后时间,以增强特征鲁棒性。同时,使用PCA衍生的MA组分来识别和排除MA污染的段。为了评估新算法,我们使用牢记MWPPG测量装置进行比较实验(n = 22),并使用双管球术语BP测量作为参考。结果证明了基于PCA的MWPPG信号的操作能够改进,产生1.44 +/- 6.89 mmHg的误差,用于收缩压和-1.00 +/- 6.71mm Hg,用于舒张压。总之,所提出的基于PCA的方法可以提高MWPPG在可携带的医疗装置中的性能,以便无齿状BP测量。

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