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Investigation of heart rate variability in major depression patients using wavelet packet transform

机译:基于小波包变换的重症抑郁症患者心率变异性研究

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摘要

Studies conducted in major depression (MD) patients have reported a high risk of cardiac morbidity as a result of the relationship between changed cardiovascular activity (CA) and autonomic dysfunctions. The investigation of heart rate variability (HRV) gives valuable idea about variances in autonomic CA of MD patients. To get this knowledge, frequency-domain HRV analysis is frequently performed using Fourier transformation (FT) or discrete-wavelet transformation (DWT) to decompose the data into high-frequency (HF) and low-frequency (LF) bands. Nevertheless, it has been reported that the FT is not useful for nonstationary HRV signals and the DWT does not ensure required frequency boundaries of each band. This study aims to compare the frequency-domain HRV features using wavelet-packet-transform (WPT) with absolutely excellent approximation to required band ranges between the controls and patients. In addition to LF and HF band energies, sympathovagal balance that indicates the variation of sympathetic and parasympathetic activities were compared between two groups. Patients had a significantly lower HF energy, higher values of LF energy and higher LF/HF ratio. Our results recommend that impairments in coordination between parasympathetic and sympathetic behavior in MD patients can be assessed by HRV analysis using WPT with high resolution decomposition for needed bands. (C) 2016 Elsevier Ireland Ltd. All rights reserved.
机译:在重度抑郁症(MD)患者中进行的研究报告,由于心血管活动(CA)变化与植物神经功能紊乱之间的关系,导致心脏疾病的高风险。心率变异性(HRV)的研究为MD患者的自主神经CA变异提供了有价值的想法。为了获得此知识,经常使用傅立叶变换(FT)或离散小波变换(DWT)进行频域HRV分析,以将数据分解为高频(HF)和低频(LF)频段。然而,据报道,FT对于非平稳HRV信号没有用,并且DWT不能确保每个频带所需的频率边界。这项研究旨在比较使用小波包变换(WPT)的频域HRV特征,其中绝对优异地近似了对照组和患者之间的所需频带范围。除了低频和高频频段的能量,还比较了两组交感迷走神经的平衡,表明交感神经和副交感神经活动的变化。患者的HF能量明显较低,LF能量值较高,且LF / HF比更高。我们的结果建议,可以通过使用WPT对所需频段进行高分辨率分解的HRV分析来评估MD患者副交感和交感行为之间的协调障碍。 (C)2016 Elsevier Ireland Ltd.保留所有权利。

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