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Facial Video based Heart Rate Estimation for Physical Exercise

机译:体育锻炼的面部视频心率估计

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Heart rate estimation from facial videos is useful in applications such as telemedicine, public health monitoring, driver assessment, stress management and affective computing. Various studies have been done on evaluating remote photoplethysmography (rPPG) signals for subjects under different facial expressions to predict emotions. This paper proposed an analysis of heart rate measures from facial videos in the presence of heart rate variations for fitness applications. It is important to retrieve the health status of exercise and an optimized training program can be customized according to the preference physiological parameters. The state-of-the-art algorithm is applied to the raw RGB signals using Independent Component Analysis (ICA) method. The time-frequency domain of Fourier Transform is constructed to form PPG signals and estimate the heart rate. The analysis was carried out and validated using self-collected dataset using heart rate monitoring system prototype which developed using a pulse sensor as an input and Arduino microcontroller. The experimental results show that the state-of-the-art algorithm has an obvious low error index to proof efficiency and accuracy in various conditions of subjects with faster heartbeat after performing several physical exercises.
机译:面部影片的心率估计在远程医疗,公共卫生监测,驾驶员评估,压力管理和情感计算等应用中有用。已经在评估不同面部表情下的受试者的远程光学质敏感(RPPG)信号进行各种研究以预测情绪。本文提出了在健身应用的心率变化存在下从面部视频的心率测量分析。重要的是要检索运动的健康状况,并且可以根据偏好生理参数定制优化的培训计划。使用独立分量分析(ICA)方法将最先进的算法应用于原始RGB信号。构建傅里叶变换的时频域以形成PPG信号并估计心率。使用使用脉冲传感器作为输入和Arduino微控制器开发的心率监测系统原型进行了分析和验证了自收集的数据集。实验结果表明,最先进的算法在执行几种体育锻炼后具有明显的低误差指数,可在各种受试者条件下证明效率和准确性。

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