Decomposition of heart rate variability by adaptive filtering for estimation of cardiac vagal tone

K. Jan, J. Nagel, B. Hurwitz, N. Schneiderman
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引用次数: 9

Abstract

Heart rate fluctuations resulting from respiration and otber influences upon the cardiovascu1ar system are encoded into the patterns of heart rate variability (HRV). The fluctuations due to respiration are called respiratory sinus arrhythmia (RSA). Since RSA is primarily mediated through the autonomic nervous system (ANS), it is of interest to separate RSA from other influences to assess the underlying ANS function. On the other hand, the RSA may obscure heart rate responses to external manipulations in psychophysiological tests. A method of partitioning the HRV signal which can provide quantitative estimate of RSA as well as true heart rate responses without respiratory disturbances for psychophysiological studies is developed. The analysis of HRV signal is performed using an adaptive filtering system. With the simultaneously recorded respiration signal as a reference input, the HRV signal can be separated into two components, RSA and fluctuation due to other influences. After the separation, the variance of RSA, an estimate of cardiac vagal tone (ECVf), is readily obtained. The performance of the system was evaluated using artificial test signals as well as real HR V data. As a time domain approach, the method is simple, fast and robust.
心率变异性的自适应滤波分解估计心脏迷走神经张力
由呼吸和其他对心血管系统的影响引起的心率波动被编码为心率变异性(HRV)模式。呼吸引起的波动称为呼吸性窦性心律失常(RSA)。由于RSA主要通过自主神经系统(ANS)介导,因此将RSA从其他影响中分离出来以评估潜在的ANS功能是有意义的。另一方面,在心理生理学测试中,RSA可能会模糊心率对外部操纵的反应。提出了一种分割HRV信号的方法,该方法可以为心理生理学研究提供RSA的定量估计以及无呼吸障碍的真实心率反应。采用自适应滤波系统对HRV信号进行分析。以同时记录的呼吸信号作为参考输入,将HRV信号分为RSA和其他影响引起的波动两个分量。分离后,RSA方差,估计心脏迷走神经张力(ECVf),很容易得到。利用人工测试信号和真实HR - V数据对系统的性能进行了评估。作为一种时域方法,该方法具有简单、快速、鲁棒性好等优点。
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