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基于交叉小波变换心肺耦合的自主神经系统老化效应评估方法及系统

[Evaluation method and system for aging effects of autonomic nervous system based on cross-wavelet transform cardiopulmonary coupling].

作者信息

Lyu Juntong, Wang Yining, Shi Wenbin, Tao Pengyan, Ye Jianhong

机构信息

School of Information and Electronics, Beijing Institute of Technology, Beijing 100081, P. R. China.

出版信息

Sheng Wu Yi Xue Gong Cheng Xue Za Zhi. 2025 Aug 25;42(4):748-756. doi: 10.7507/1001-5515.202410050.

Abstract

Heart rate variability time and frequency indices are widely used in functional assessment for autonomic nervous system (ANS). However, this method merely analyzes the effect of cardiac dynamics, overlooking the effect of cardio-pulmonary interplays. Given this, the present study proposes a novel cardiopulmonary coupling (CPC) algorithm based on cross-wavelet transform to quantify cardio-pulmonary interactions, and establish an assessment system for ANS aging effects using wearable electrocardiogram (ECG) and respiratory monitoring devices. To validate the superiority of the proposed method under nonstationary and low signal-to-noise ratio conditions, simulations were first conducted to demonstrate the performance strength of the proposed method to the traditional one. Next, the proposed CPC algorithm was applied to analyze cardiac and respiratory data from both elderly and young populations, revealing that young populations exhibited significantly stronger couplings in the high-frequency band compared with their elderly counterparts. Finally, a CPC assessment system was constructed by integrating wearable devices, and additional recordings from both elderly and young populations were collected by using the system, completing the validation and application of the aging effect assessment algorithm and the wearable system. In conclusion, this study may offers methodological and system support for assessing the aging effects on the ANS.

摘要

心率变异性的时域和频域指标在自主神经系统(ANS)的功能评估中被广泛应用。然而,这种方法仅分析了心脏动力学的影响,而忽略了心肺相互作用的影响。鉴于此,本研究提出了一种基于交叉小波变换的新型心肺耦合(CPC)算法,以量化心肺相互作用,并使用可穿戴心电图(ECG)和呼吸监测设备建立一个用于评估ANS衰老效应的系统。为了验证该方法在非平稳和低信噪比条件下的优越性,首先进行了模拟,以证明该方法相对于传统方法的性能优势。接下来,将所提出的CPC算法应用于分析老年人和年轻人的心脏和呼吸数据,结果表明,与老年人相比,年轻人在高频带表现出明显更强的耦合。最后,通过集成可穿戴设备构建了一个CPC评估系统,并使用该系统收集了老年人和年轻人的额外记录,完成了衰老效应评估算法和可穿戴系统的验证与应用。总之,本研究可能为评估衰老对ANS的影响提供方法学和系统支持。

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