Color Distortion Removal for Heart Rate Monitoring in Fitness Scenario

Quoc-Viet Tran, S. Su, M. Tran
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Abstract

Heart rate estimation from fitness plays an important role in the evaluation of fitness exercises. Conventional approaches use the photoplethysmography (PPG) sensor to consider the change of light absorption on the wrist skin for heart rate estimation. However, users are required to buy smartwatches for using this function. Various approaches based on video analysis are recently implemented for surveillance purpose. However, it is unstable for motion scenario such as fitness exercises due to the color distortion induced by movement. POS and CHROM are introduced to address this issue. Since the fixed projection planes from POS and CHROM are given in several sources of light, it is not widely applied for surveillance applications. Therefore, a novel projection plane that is adaptively changed with the lighting environment is proposed to estimate the heart rate from fitness videos in ambient light. Moreover, image and digital signal processing techniques are also applied to extract the clean pulse signal from a novel projection plane. From the experiments conducted, the proposed approach outperformed the existing approaches to be the best model for heart rate estimation from fitness videos with the accuracy up to 91.08%.
健身场景下心率监测的色彩失真去除
健身心率估算在健身运动评价中起着重要的作用。传统的方法使用光容积脉搏波(PPG)传感器来考虑手腕皮肤上光吸收的变化来估计心率。但是,用户需要购买智能手表才能使用该功能。基于视频分析的各种方法最近被用于监控目的。然而,由于运动引起的颜色失真,在健身锻炼等运动场景中,它是不稳定的。引入POS和CHROM来解决这个问题。由于POS和CHROM的固定投影平面是在多个光源下给出的,因此在监视应用中应用并不广泛。为此,提出了一种随光照环境自适应变化的投影平面来估计环境光照下健身视频的心率。此外,还应用了图像和数字信号处理技术从新的投影平面上提取干净脉冲信号。实验结果表明,该方法优于现有的健身视频心率估计方法,准确率高达91.08%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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