Computational tools for assessing cardiovascular variability

C. Tavares, R. Martins, S. Laranjo, I. Rocha
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引用次数: 19

Abstract

The analysis of heart rate variability is nowadays a common method for noninvasive evaluation of the autonomic nervous system integrity. In this work we developed an integrated and modular system — FisioSinal — capable of clinical and laboratorial evaluation of the behavior of autonomic nervous system using cardiovascular signals in humans and animal models. The computational tools that were included seek to cover the currently most validated methodologies: stochastic analysis, descriptive statistics, auto-regression, fast Fourier transform, discrete Wavelets transform and baroreflex sensitivity index. Due to its limitations, we developed and validated a new analytical tool based on Hilbert-Huang transform. FisioSinal was validated and tested by analyzing a synthesized signal. The clinical applicability was demonstrated through an analysis of the cardiovascular signals of a normal individual and a patient with paroxysmal atrial fibrillation, undergoing autonomic a provocation maneuver.
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评估心血管变异性的计算工具
心率变异性分析是目前自主神经系统完整性无创评估的常用方法。在这项工作中,我们开发了一个集成的模块化系统- FisioSinal -能够在人类和动物模型中使用心血管信号对自主神经系统的行为进行临床和实验室评估。所包括的计算工具试图涵盖目前最有效的方法:随机分析,描述性统计,自回归,快速傅立叶变换,离散小波变换和压力反射灵敏度指数。由于其局限性,我们开发并验证了一种新的基于Hilbert-Huang变换的分析工具。FisioSinal通过分析合成信号进行了验证和测试。通过对一名正常人和一名阵发性心房颤动患者进行自主刺激操作的心血管信号分析,证明了该方法的临床适用性。
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