基于非接触式视频的移动服务机器人脉搏率测量

Ronny Stricker, Steffen Müller, H. Groß
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引用次数: 171

摘要

在过去的5年中,非接触式图像光容积脉搏波描记术得到了广泛的关注。从Verkruysse等人的工作开始[1],已经提出了各种方法从环境照明下的面部视频序列中估计人体脉搏率。应用于移动服务机器人,旨在激励老年用户进行体育锻炼,脉搏率可以成为一个有价值的信息,以适应用户的条件。本文在移动机器人上实现了一个典型的处理流水线,并对人脸分割的方法进行了详细的比较,人脸分割是即使在对象移动时也能鲁棒提取脉搏率的关键因素。引入了一个基准数据集,重点关注测量过程中头部的运动量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Non-contact video-based pulse rate measurement on a mobile service robot
Non-contact image photoplethysmography has gained a lot of attention during the last 5 years. Starting with the work of Verkruysse et al. [1], various methods for estimation of the human pulse rate from video sequences of the face under ambient illumination have been presented. Applied on a mobile service robot aimed to motivate elderly users for physical exercises, the pulse rate can be a valuable information in order to adapt to the users conditions. For this paper, a typical processing pipeline was implemented on a mobile robot, and a detailed comparison of methods for face segmentation was conducted, which is the key factor for robust pulse rate extraction even, if the subject is moving. A benchmark data set is introduced focusing on the amount of motion of the head during the measurement.
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