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基于脉搏波传导时间和PPG形态特征的无袖带血压估计定量分析:糖尿病组与非糖尿病组的比较研究

Quantitative analysis of pulse arrival time and PPG morphological features based cuffless blood pressure estimation: a comparative study between diabetic and non-diabetic groups.

作者信息

Park Seongryul, Lee Seungjae, Park Eunkyoung, Lee Jongshill, Kim In Young

机构信息

Department of Electronic Engineering, Hanyang University, Seoul, 04763 South Korea.

Exosystems, Seongnam, 13449 South Korea.

出版信息

Biomed Eng Lett. 2023 Jun 8;13(4):625-636. doi: 10.1007/s13534-023-00284-w. eCollection 2023 Nov.

Abstract

Pulse arrival time (PAT) and PPG morphological features have attracted much interest in cuffless blood pressure (BP) estimation, but their effects are not clearly understood when vascular characteristics are affected by diseases such as diabetes. This work quantitatively analyzes the effect of diabetic disease on the PAT and PPG morphological features-based BP estimation. We selected 112 diabetic patients and 308 non-diabetic subjects from VitalDB, and extracted 16 features including PAT, PPG morphological features, and heart rate. BP estimation performance was statistically compared between groups using linear regression models with several feature sets, and the relative importance of each feature in the optimal feature set was extracted. As a result, the standard deviation of the error and mean absolute error of PAT-based BP estimation were significantly higher in the diabetic group than in the non-diabetic group ( < 0.01). A feature set containing PAT and PPG morphological features achieved the best performance in both groups. However, the relative importance of each feature for BP estimation differed notably between groups. The results indicate that different features are important depending on the vascular characteristics, which could help to construct different models to accommodate specific diseases.

摘要

脉搏波传导时间(PAT)和光电容积脉搏波描记法(PPG)形态特征在无袖带血压估计方面引起了广泛关注,但当血管特征受到糖尿病等疾病影响时,它们的作用尚未得到清晰的理解。这项工作定量分析了糖尿病对基于PAT和PPG形态特征的血压估计的影响。我们从VitalDB中选取了112名糖尿病患者和308名非糖尿病受试者,并提取了包括PAT、PPG形态特征和心率在内的16个特征。使用具有多个特征集的线性回归模型对两组之间的血压估计性能进行了统计学比较,并提取了最佳特征集中每个特征的相对重要性。结果显示,基于PAT的血压估计的误差标准差和平均绝对误差在糖尿病组中显著高于非糖尿病组(<0.01)。包含PAT和PPG形态特征的特征集在两组中均表现出最佳性能。然而,两组中每个特征对血压估计的相对重要性存在显著差异。结果表明,根据血管特征不同的特征很重要,这有助于构建不同的模型以适应特定疾病。

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本文引用的文献

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Continuous PPG-Based Blood Pressure Monitoring Using Multi-Linear Regression.基于多线性回归的连续 PPG 血压监测。
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