基于频域相似性的呼吸状态分类与检测

Suyeol Kim, Chaehwan Hwang, Jisu Kim, Cheolhyeong Park, Deokwoo Lee
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引用次数: 1

摘要

睡眠呼吸暂停被认为是人类健康最关键的问题之一,也是医学领域最重要的生物信号之一。在本文中,我们提出了一种基于正常呼吸和呼吸暂停之间的相互关系以及呼吸信号特征的呼吸状态检测和分类方法。通过频率分析提取信号的特征。该方法简单、直观,在实际应用中具有一定的可行性。为了验证所提出的算法,给出了实验结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
SIMILARITY BASED CLASSIFICATION AND DETECTION OF RESPIRATORY STATUS IN FREQUENCY DOMAIN
Sleep apnea is considered one of the most critical problems of human health, and it is also considered one of the most important bio-signals in the area of medicine. In this paper, we propose the approach to detection and classification of respiratory status based on cross correlation between normal respiration and apnea, and on the characteristics of respiratory signals. The characteristics of the signals are extracted by analyzing frequency analysis. The proposed method is simple and straightforward so that it can be workable in practice. To substantiate the proposed algorithm, the experimental results are provided.
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