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首页> 外文期刊>Revista de Chimie >Extraction of Reliable Information from Time-Domain Pressure and Flow Signals Measured By Means of Forced Oscillation Techniques
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Extraction of Reliable Information from Time-Domain Pressure and Flow Signals Measured By Means of Forced Oscillation Techniques

机译:从时域压力和流量信号中提取可靠信息,这些信号通过强制振荡技术进行测量

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摘要

This paper aims to give a proof-of-concept for the possible application of the forced oscillation lung function test to assess the viscoelastic properties of the airways and tissue. In particular, a novel signal processing algorithm is employed on non-stationary, noisy, (relatively) short time series of respiratory pressure and flow signals. This novel technique is employed to filter the useful information from the signals acquired under two measurement conditions: pseudo-functional residual capacity (PFRC) and pseudo-total lung capacity (PTLC). The PFRC is the measurement performed at lowest lung volume with maximum deflation, and the PTLC is measurement performed at the maximum lung volume under maximum inflation. The results suggest that the proposed technique is able to extract information on the viscoelastic properties of the lung tissue at a macroscopic level. The conclusion of this preliminary study is that the proposed combination of signal processing method and lung function test is suited to be employed on a large database in order to deliver reference values and perform further statistical analysis. KRespiratory mechanics;;defending procedure;;filtering;;lung function;;oscillatory mechanics;;statistical signal processing
机译:本文旨在为强制振荡肺功能测试可能用于评估气道和组织的粘弹性特性提供概念验证。特别地,在呼吸压力和流量信号的非平稳,嘈杂的(相对)短时间序列上采用了新颖的信号处理算法。这项新技术用于从两种测量条件下获取的信号中过滤出有用的信息:伪功能残余容量(PFRC)和伪总肺容量(PTLC)。 PFRC是在具有最大放气的最低肺体积下进行的测量,而PTLC是在最大充气下在最大肺体积下进行的测量。结果表明,所提出的技术能够在宏观水平上提取有关肺组织粘弹性质的信息。这项初步研究的结论是,信号处理方法和肺功能测试的建议结合适用于大型数据库,以提供参考值并进行进一步的统计分析。 K呼吸力学;防御程序;过滤;肺功能;振荡力学;统计信号处理

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