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Breath Rate Variability: A Novel Measure to Study the Meditation Effects

机译:呼吸频率变异性:一种研究冥想效果的新方法

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Context: Reliable quantitative measure of meditation is still elusive. Although electroencephalogram (EEG) and heart rate variability (HRV) are known as quantitative measures of meditation, effects of meditation on EEG and HRV may well take long time as these measures are involuntarily controlled. Effect of mediation on respiration is well known; however, quantitative measures of respiration during meditation have not been studied. Aims: Breath rate variability (BRV) as an alternate measure of meditation even over a short duration is proposed. The main objective of this study is to test the hypothesis that BRV is a simple measure that differentiates between meditators and nonmeditators. Settings and Design: This was a nonrandomized, controlled trial. Volunteers meditate in their natural habitat during signal acquisition. Subjects and Methods: We used Photo-Plythysmo-Gram (PPG) signal acquisition system from BIO-PAC and recorded video of chest and abdomen movement due to respiration during a short meditation (15 min) session for 12 individuals (all males) meditating in a relaxed sitting posture. Seven of the 12 individuals had substantial experience in meditation, while others are controls without any experience in meditation. Respiratory signal from PPG signal was derived and matched with that of the video respiratory signal. This derived respiratory signal is used for calculating BRV parameters in time, frequency, nonlinear, and time-frequency domain. Statistical Analysis Used: First, breath-to-breath interval (BBI) was calculated from the respiration signal, then time domain parameters such as standard deviation of BBI (SDBB), root mean square value of SDBB (RMSSD), and standard deviation of SDBB (SDSD) were calculated. We performed spectral analysis to calculate frequency domain parameters (power spectral density [PSD], power of each band, peak frequency of each band, and normalized frequency) using Burg, Welch, and Lomb–Scargle (LS) method. We calculated nonlinear parameters (sample entropy, approximate entropy, Poincare plot, and Renyi entropy). We calculated time frequency parameters (global PSD, low frequency-high frequency [LF-HF] ratio, and LF-HF power) by Burg LS and wavelet method. Results: The results show that the mediated individuals have high value of SDSD (+24%), SDBB (+29%), and RMSSD (+26%). Frequency domain analysis shows substantial increment in LFHF power (+73%) and LFHF ratio (+33%). Nonlinear parameters such as SD1 and SD2 were also more (20%) for meditated persons. Conclusions: As compared to HRV, BRV can provide short-term effect on anatomic nervous system meditation, while HRV shows long-term effects. Improved autonomic function is one of the long-term effects of meditation in which an increase in parasympathetic activity and decrease in sympathetic dominance are observed. In future works, BRV could also be used for measuring stress.
机译:背景:可靠的定量冥想方法仍然难以捉摸。尽管脑电图(EEG)和心率变异性(HRV)被认为是冥想的量化指标,但由于这些措施受到非自愿控制,因此冥想对EEG和HRV的影响可能会花费很长时间。调解对呼吸的影响是众所周知的。然而,尚未研究冥想期间呼吸的定量测量。目的:提出了即使在短时间内也可以采用呼吸频率变异性(BRV)作为冥想的替代方法。这项研究的主要目的是检验BRV是区分冥想者和非冥想者的简单方法的假设。设置和设计:这是一项非随机对照试验。信号采集期间,志愿者在自然栖息地打坐。受试者和方法:我们使用了来自BIO-PAC的Photo-Plythysmo-Gram(PPG)信号采集系统,并记录了在短时间冥想(15分钟)期间因呼吸作用而引起的胸部和腹部运动的视频,其中有12个人(所有男性)正在冥想中放松的坐姿12个人中有7个人具有丰富的冥想经验,而其他人则是没有禅修经验的对照。从PPG信号得出呼吸信号,并将其与视频呼吸信号相匹配。该导出的呼吸信号用于在时域,频率域,非线性域和时频域中计算BRV参数。使用的统计分析:首先,从呼吸信号计算出呼吸间隔(BBI),然后计算时域参数,例如BBI的标准偏差(SDBB),SDBB的均方根值(RMSSD)以及计算SDBB(SDSD)。我们使用Burg,Welch和Lomb–Scargle(LS)方法进行了频谱分析,以计算频域参数(功率谱密度[PSD],每个频带的功率,每个频带的峰值频率和归一化频率)。我们计算了非线性参数(样本熵,近似熵,庞加莱图和仁义熵)。我们通过Burg LS和小波方法计算了时频参数(全局PSD,低频-高频[LF-HF]比和LF-HF功率)。结果:结果表明,介导的个体具有较高的SDSD(+24%),SDBB(+ 29%)和RMSSD(+ 26%)值。频域分析显示LFHF功率(+ 73%)和LFHF比率(+ 33%)显着增加。冥想者的非线性参数(例如SD1和SD2)也更大(> 20%)。结论:与HRV相比,BRV对静息解剖神经系统的冥想具有短期作用,而HRV具有长期作用。自主神经功能的改善是冥想的长期效果之一,其中观察到了副交感神经活动的增加和交感神经支配性的降低。在将来的工作中,BRV也可以用于测量压力。

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