首页> 外文期刊>IEEE Transactions on Biomedical Engineering >Multivariate time-variant identification of cardiovascular variability signals: a beat-to-beat spectral parameter estimation in vasovagal syncope
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Multivariate time-variant identification of cardiovascular variability signals: a beat-to-beat spectral parameter estimation in vasovagal syncope

机译:心血管变异信号的多元时变识别:血管迷走性晕厥的逐搏频谱参数估计

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摘要

In this paper a bivariate, time-variant model able to continuously measure the mutual interactions between heart rate and systolic blood pressure variability signals is presented. A recursive identification of the model parameters makes it possible to estimate, on a beat-to-beat basis, spectral low-frequency (LF) and high-frequency (HF) power (LF/HF ratio) and cross-spectral (coherence and phase relationships between spectral peaks) indexes during nonstationary events. These indexes can be helpful in: 1) physiological study of autonomic nervous system mechanisms of cardiovascular control and 2) quantification and clinical evaluation of the neural and mechanical links between the two signals. In addition, an estimate of baroreceptive activation (/spl alpha/-gain) is continuously extracted. Before applying the model to cardiovascular signals, the reliability of the estimated parameters was tested on simulated signals. Subsequently, the model was applied to investigating vasovagal syncope episodes, aiming at the assessment of autonomic nervous system status and autonomic role in the dynamic phenomena which lead to syncope. The proposed model, which provides noninvasive beat-to-beat evaluation of the autonomic events, may be useful in the description of the syncopal episodes and in the comprehension of the complex physiological mechanisms of syncope.
机译:本文提出了一种双变量时变模型,该模型能够连续测量心率和收缩压变异性信号之间的相互作用。对模型参数的递归识别可以在逐个拍子的基础上估计频谱低频(LF)和高频(HF)功率(LF / HF比)和互谱(相干和非平稳事件期间频谱峰值之间的相位关系索引。这些指标有助于:1)自主神经系统心血管控制机制的生理研究; 2)两种信号之间神经和机械联系的定量和临床评估。此外,不断提取压力感受性激活(/ spl alpha /-增益)的估计值。在将模型应用于心血管信号之前,已对模拟信号测试了估计参数的可靠性。随后,该模型用于调查血管迷走性晕厥发作,旨在评估自主神经系统状态和自主神经在导致晕厥的动态现象中的作用。所提出的模型提供了对自主神经事件的无创搏动评估,可能对晕厥发作的描述以及对晕厥复杂生理机制的理解很有用。

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