Spatio-temporal video processing for respiratory rate estimation

D. Alinovi, L. Cattani, G. Ferrari, F. Pisani, R. Raheli
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引用次数: 22

Abstract

In this paper, we present a wire-free, low-cost video processing-based technique for respiratory rate (RR) estimation. The proposed method blends together two recently presented techniques, with the purpose of emphasizing small movements, such as respiratory movements possibly present in a video stream, in order to detect them. Initially, the system performs a spatial decomposition of the video frames in a pyramidal representation, in which each layer contains different spatial details. The levels are then pixel-wise temporally filtered with an infinite impulse response (IIR) filter, purposely designed to extract components having a periodicity compatible with the respiratory rate. Afterwards a single motion signal is extracted from each level. Finally, the extracted signals are jointly analyzed according to the maximum likelihood (ML) criterion in order to estimate the respiratory rate. The parameters extracted by our algorithm show a good agreement with those indicated by a gold-standard polysomnographic system. Therefore, our results, although preliminary, are encouraging and show that the respiratory rate can be reliably measured and monitored by a low-cost, wire-free, video processing-based system.
用于呼吸频率估计的时空视频处理
在本文中,我们提出了一种基于无线、低成本视频处理的呼吸速率估计技术。所提出的方法将两种最近提出的技术结合在一起,其目的是强调视频流中可能存在的小运动,例如呼吸运动,以便检测它们。最初,系统以金字塔表示的形式对视频帧进行空间分解,其中每层包含不同的空间细节。然后用无限脉冲响应(IIR)滤波器对电平进行逐像素的暂时滤波,该滤波器旨在提取与呼吸频率具有周期性兼容的分量。然后,从每个级别提取单个运动信号。最后,根据最大似然准则对提取的信号进行联合分析,以估计呼吸速率。该算法提取的参数与金标准多导睡眠描记系统显示的参数吻合较好。因此,我们的结果虽然是初步的,但令人鼓舞,并表明呼吸速率可以通过低成本,无线,基于视频处理的系统可靠地测量和监测。
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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