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Image based contactless blood pressure assessment using Pulse Transit Time

机译:基于图像的使用脉冲传输时间的非接触式血压评估

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Recent years have seen increased attention being given to Blood Pressure (BP) monitoring. Among all kinds of measurements, the monitors based on Pulse Transit Time (PTT) have gain plenty of attention due to its continuous and cuffless features. Additionally, several studies proposed a fancy way to estimate photoplethysmography (PPG) signal simply via a regular webcam. Nevertheless, literatures on issues of integrating these two advanced techniques have emerged on a slowly and scattered way. Furthermore, accuracy of BP prediction model based on PTT is often limited due to the lack of data. To address the above-mentioned problems, we proposed an image based BP measurement algorithm using k-nearest neighbor and transfer learning results from MIMICII database to real task. The study also introduces newly defined PTT features which are especially suitable for image based PPG and domain adaptation. Compared with the state-of-the-art algorithm, root mean square error of SBP evaluation has been reduced from 15.08 to 14.02.
机译:近年来,血压(BP)监测的注意力增加。在各种测量中,由于其连续和无齿状特征,基于脉冲传输时间(PTT)的显示器具有很多。此外,几项研究提出了一种普通的网络摄像头来估计光学质敏感(PPG)信号的奇特方式。然而,关于整合这两种先进技术的问题的文献已经慢慢地散布了。此外,由于缺乏数据,基于PTT的基于PTT的BP预测模型的准确性通常受到限制。为了解决上述问题,我们提出了一种基于图像的BP测量算法,使用K-Collest Exbeld并将学习结果从MIMICII数据库传输到真实任务。该研究还介绍了新定义的PTT功能,特别适用于基于图像的PPG和域自适应。与最先进的算法相比,SBP评估的根均方误差从15.08降至14.02。

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