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使用热成像和深度摄像仪视频记录进行呼吸分析。

Breathing Analysis Using Thermal and Depth Imaging Camera Video Records.

机构信息

Department of Computing and Control Engineering, University of Chemistry and Technology in Prague, 166 28 Prague, Czech Republic.

Faculty of Applied Informatics, Tomas Bata University in Zlín, 760 05 Zlín, Czech Republic.

出版信息

Sensors (Basel). 2017 Jun 16;17(6):1408. doi: 10.3390/s17061408.

Abstract

The paper is devoted to the study of facial region temperature changes using a simple thermal imaging camera and to the comparison of their time evolution with the pectoral area motion recorded by the MS Kinect depth sensor. The goal of this research is to propose the use of video records as alternative diagnostics of breathing disorders allowing their analysis in the home environment as well. The methods proposed include (i) specific image processing algorithms for detecting facial parts with periodic temperature changes; (ii) computational intelligence tools for analysing the associated videosequences; and (iii) digital filters and spectral estimation tools for processing the depth matrices. Machine learning applied to thermal imaging camera calibration allowed the recognition of its digital information with an accuracy close to 100% for the classification of individual temperature values. The proposed detection of breathing features was used for monitoring of physical activities by the home exercise bike. The results include a decrease of breathing temperature and its frequency after a load, with mean values -0.16 °C/min and -0.72 bpm respectively, for the given set of experiments. The proposed methods verify that thermal and depth cameras can be used as additional tools for multimodal detection of breathing patterns.

摘要

本文致力于使用简单的热成像摄像机研究面部区域温度变化,并将其与 MS Kinect 深度传感器记录的胸区运动的时间演化进行比较。这项研究的目的是提出使用视频记录作为替代呼吸障碍诊断的方法,以便在家庭环境中进行分析。所提出的方法包括(i)用于检测具有周期性温度变化的面部部分的特定图像处理算法;(ii)用于分析相关视频序列的计算智能工具;以及(iii)用于处理深度矩阵的数字滤波器和谱估计工具。应用于热成像摄像机校准的机器学习允许对其数字信息进行接近 100%的准确识别,以便对个别温度值进行分类。所提出的呼吸特征检测用于家庭健身车的身体活动监测。结果包括在负载后呼吸温度及其频率降低,给定实验集的平均值分别为-0.16°C/min 和-0.72 bpm。所提出的方法验证了热成像和深度摄像机可以用作多模态呼吸模式检测的附加工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bdfd/5491982/b97db19d5409/sensors-17-01408-g001.jpg

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