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首页> 外文期刊>Journal of ambient intelligence and humanized computing >Robust blood pressure estimation using an RGB camera
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Robust blood pressure estimation using an RGB camera

机译:使用RGB相机鲁棒血压估计

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摘要

Blood pressure (BP) is one of important vital signs in diagnosing certain cardiovascular diseases such as hypertension. A few studies have shown that BP can be estimated by pulse transit time (PTT) derived by calculating the time difference between two photoplethysmography (PPG) measurements, which requires a set of body-worn sensors attached to the skin. Recently, remote photoplethysmography (rPPG) has been proposed as an alternative to contactless monitoring. In this paper, we propose a novel contactless framework to estimate BP based on PTT. We develop an algorithm to adaptively select reliable local rPPG pairs, which can remove the rPPG pairs having poor quality. To further improve the PTT estimation, an adaptive Gaussian model is developed to refine the shape of rPPG by analyzing the essential characteristics of rPPG. The adjusted PTT is computed from the refined rPPG signal to estimate BP. The proposed framework is validated using the video sequences captured by an RGB camera, with the ground truth BP measured using a BP monitor. Experiments on the videos collected in laboratory have shown that the proposed framework is capable of estimating BP, with a statistically compliance compared with BP monitor.
机译:血压(BP)是诊断某些心血管疾病如高血压等重要的重要标志之一。一些研究表明,通过通过计算两个光学电脑描绘(PPG)测量值之间的时间差来估计BP,该时间差是需要连接到皮肤上的一组身体磨损的传感器的脉冲传输时间(PTT)。最近,已经提出了远程光学电脑描绘(RPPG)作为非接触式监测的替代方案。在本文中,我们提出了一种新的非接触框架来估计基于PTT的BP。我们开发了一种算法,可自适应地选择可靠的本地RPPG对,其可以去除质量差的RPPG对。为了进一步提高PTT估计,开发了一种自适应高斯模型以通过分析RPPG的基本特征来优化RPPG的形状。调整后的PTT由精细的RPPG信号计算以估计BP。使用RGB相机捕获的视频序列验证了所提出的框架,使用BP监视器测量的地面真理BP。在实验室收集的视频上的实验表明,与BP监视器相比,所提出的框架能够估算BP,统计上符合性。

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