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A Statistical Framework for Non-Contact Heart Rate Estimation via Photoplethysmogram Imaging

机译:通过光电容积描记术成像估算非接触式心率的统计框架

摘要

Although medical progress and increased health awareness over the last 60 years have reduced death rates from cardiovascular disease by more than 75%, cardiovascular disease remains one of the leading causes of death, hospitalization, and cause of prescription drug use. Resting heart rate can act as an independent risk factor in cardiovascular mortality, while more detailed blood volume waveforms can offer insight on blood pressure, blood oxygenation, respiration rate, and cognitive stress.Electrocardiograms (ECGs) are widely used in the clinical setting due to their accurate measurement of heart rate and detailed capture of heart muscle depolarization, making them useful in diagnosis of specific cardiovascular conditions. However, the discomfort caused by the required adhesive patches, as well as the relatively high cost of ECG machines, introduces the need for an alternative system when only the resting heart rate is required. Photoplethysmography (PPG), the optical acquisition of blood volume pulse over time, offers one such solution. The pulse oximeter, a device which clips onto a thin extremity and measures the amount of transmitted light over time, is widely used in a clinical setting for heart rate and oxygen saturation measurements in cases where ECG is unnecessary or unavailable. Recently, a technique has been demonstrated to construct a blood volume pulse signal without the need for contact, offering a more sanitary and comfortable alternative to pulse oximetry. This technique relies on camera systems and is known as PPG imaging (PPGI). However, the accuracy of PPGI methods suffers in realistic environments with error incurred by motion, illumination variation, and natural fluctuation of the heart rate. For this reason, a statistical framework which aims to offer higher accuracy in realistic scenarios is proposed.The initial step in the framework is to construct a PPG waveform, a time series correlated to hemoglobin concentration. Here, an importance-weighted Monte Carlo sampling strategy is used to construct a PPG waveform from many time series observations. Once the PPG waveform is established, a continuous wavelet transform is applied, using the so-called pulselet as the mother wavelet, to create a response map in the time-frequency domain. The average of frequencies corresponding to the maximum response over time is used as the heart rate estimation.To verify the efficacy of the proposed framework, tests were run on two data sets; the first consists of broadband red-green-blue (RGB) colour channel video data and the second contains single channel near infrared video data. In the first case, improvements over state-of-the-art methods were shown, however; in the second case, no statistically significant improvement was observed.
机译:尽管过去60年的医学进步和健康意识的提高使心血管疾病的死亡率降低了75%以上,但是心血管疾病仍然是死亡,住院和处方药使用的主要原因之一。心律静息可以作为心血管疾病死亡率的独立风险因素,而更详细的血容量波形可以提供有关血压,血液氧合,呼吸频率和认知压力的见识。由于以下原因,心电图(ECG)在临床中被广泛使用它们的准确心率测量和对心肌去极化的详细捕获,使它们可用于诊断特定的心血管疾病。然而,当仅需要静息心率时,由所需的粘合剂贴剂引起的不适以及ECG机器的相对较高的成本导致需要替代系统。光体积描记法(PPG)是随时间推移光学采集血容量脉冲的一种解决方案。脉搏血氧仪是一种可夹在四肢上并随时间测量透射光量的设备,在不需要或无法使用ECG的情况下,在临床环境中广泛用于心率和血氧饱和度的测量。最近,已经证明了一种无需接触即可构建血容量脉冲信号的技术,为脉搏血氧饱和度测定提供了更卫生,更舒适的选择。该技术依赖于相机系统,被称为PPG成像(PPGI)。但是,PPGI方法的准确性在现实环境中会受到运动,光照变化和心率自然波动引起的误差的影响。为此,提出了一个旨在在实际情况下提供更高准确性的统计框架。该框架的第一步是构建PPG波形,即与血红蛋白浓度相关的时间序列。在这里,重要性加权的蒙特卡洛采样策略用于从许多时间序列观察中构建PPG波形。一旦建立了PPG波形,就应用连续小波变换,使用所谓的小波作为母小波,在时频域中创建响应图。对应于随时间变化的最大响应的平均频率被用作心率估计值。为了验证所提出框架的有效性,对两个数据集进行了测试。第一个包含宽带红绿蓝(RGB)彩色通道视频数据,第二个包含单通道近红外视频数据。在第一种情况下,显示了对最先进方法的改进。在第二种情况下,没有观察到统计学上的显着改善。

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    Chwyl Brendan;

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  • 年度 2016
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  • 原文格式 PDF
  • 正文语种 en
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