远程心率估计的新进展及其在深度伪造检测中的应用

Yuezheng Xu, Ru Zhang, Cheng Yang, Yana Zhang, Zhen Yang, Jianyi Liu
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引用次数: 1

摘要

心率的估计和监测是反映人的生理和心理状态的重要指标。随着传感、实时信号处理和机器学习技术的突破,基于视频分析的心率测量技术已经衍生出来,远程照片脉搏描画(rPPG),一种通过相机等传感器捕捉心跳周期引起的皮肤颜色周期性变化的技术。近年来,基于rPPG的心率测量引起了广泛的关注,特别是随着基于深度学习的方法的日益成熟和算法精度的提高,以及能够更好地应对光照变化和运动伪影对测量的不利影响,使得rPPG在更多领域的应用成为可能,其中一个突出的新兴应用是基于rPPG技术的DeepFake视频检测。在本文中,我们将介绍rPPG算法的原理、最新进展,以及rPPG在DeepFake检测领域的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
New Advances in Remote Heart Rate Estimation and Its Application to DeepFake Detection
Estimation and monitoring of heart rate is an important indicator of a person’s physiological and psychological status. With breakthroughs in sensing, real-time signal processing and machine learning technologies, heart rate measurement techniques based on video analysis have been derived, remote photo plethysmography (rPPG), a technique that captures periodic changes in skin color caused by the heartbeat cycle through sensors such as cameras. Heart rate measurement based on rPPG has attracted widespread attention in recent years, especially with the growing maturity of deep learning-based methods and the improved accuracy of the algorithms, as well as the ability to better cope with the adverse effects of lighting changes and motion artifacts on the measurement, which has made possible the applications of rPPG in more fields, and a prominent emerging application is DeepFake videos detection based on rPPG technology. In this paper, we will introduce the principle, the recent progress of rPPG algorithms, and the applications of rPPG in the field of DeepFake detection.
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