Processing of ECG and Breathing Signals to Study the Correlation of Respiration Waveform Time Intervals with HF and LF Powers of Heart Rate Variability

E. Barrera, M.A. Fabian, H. Ruiz
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引用次数: 3

Abstract

The aim of this paper is to present a designed software platform for the processing of electrocardiographic (ECG) and breathing signals in order to study the correlation of respiration waveform time intervals with high frequency (HF) and low frequency (LF) powers of heart rate variability (HRV). The software was tested with signals from 5 minutes recordings, including respiration paces of 12, 9, and 6 breaths per minute. Wavelet based software was used to locate the R waves of an ECG signal, in order to obtain a tachogram used to calculate parameters of HRV. Special software was developed to process breathing signals to identify defined points of the respiration waveforms and to calculate their time intervals to study the correlation of these time intervals with HF and LF powers of HRV. These powers are traditionally associated with parasympathetic and sympathetic activity, respectively. The paper presents a description of the developed signal processing software and the obtained test results.
心电和呼吸信号的处理研究呼吸波形时间间隔与心率变异性的高频和低频功率的相关性
本文的目的是设计一个处理心电图和呼吸信号的软件平台,以研究呼吸波形时间间隔与心率变异性(HRV)高频(HF)和低频(LF)功率的相关性。该软件使用5分钟记录的信号进行测试,包括每分钟呼吸12次、9次和6次。利用基于小波的软件对心电信号的R波进行定位,得到用于计算HRV参数的速度图。开发了专门的软件来处理呼吸信号,以识别呼吸波形的定义点并计算其时间间隔,以研究这些时间间隔与HRV的高频和低频功率的相关性。这些能力传统上分别与副交感神经和交感神经活动有关。本文介绍了所开发的信号处理软件及其测试结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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