首页> 外文期刊>Medical and Biological Engineering and Computing: Journal of the International Federation for Medical and Biological Engineering >Effect of ECG-derived respiration (EDR) on modeling ventricular repolarization dynamics in different physiological and psychological conditions
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Effect of ECG-derived respiration (EDR) on modeling ventricular repolarization dynamics in different physiological and psychological conditions

机译:心电图得出的呼吸(EDR)对不同生理和心理条件下心室复极动力学建模的影响

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Ventricular repolarization dynamics is an important predictor of the outcome in cardiovascular diseases. Mathematical modeling of the heart rate variability (RR interval variability) and ventricular repolarization variability (QT interval variability) is one of the popular methods to understand the dynamics of ventricular repolarization. Although ECG derived respiration (EDR) was previously suggested as a surrogate of respiration, but the effect of respiratory movement on ventricular repolarization dynamics was not studied. In this study, the importance of considering the effect of respiration and the validity of using EDR as a surrogate of respiration for linear parametric modeling of ventricular repolarization variability is studied in two cases with different physiological and psychological conditions. In the first case study, we used 20 young and 20 old healthy subjects' ECG and respiration data from Fantasia database at Physionet to analyze a bivariate QT-RR and a trivariate model structure to study the aging effect on cardiac repolarization variability. In the second study, we used 16 healthy subjects' data from drivedb (stress detection for automobile drivers) database at Physionet to do the same analysis for different psychological condition (i.e., in stressed and no stress condition). The results of our study showed that model having respiratory information (QT-RR-RESP and QT-RR-EDR) gave significantly better fit value (p < 0.05) than that of found from the QT-RR model. EDR showed statistically similar (p > 0.05) performance as that of respiration as an exogenous model input in describing repolarization variability irrespective of age and different mental conditions. Another finding of our study is that both respiration and EDR-based models can significantly (p < 0.05) differentiate the ventricular repolarization dynamics between healthy subjects of different age groups and with different psychological conditions, whereas models without respiration or EDR cannot distinguish between the groups. These results established the importance of using respiration and the validity of using EDR as a surrogate of respiration in the absence of respiration signal recording in linear parametric modeling of ventricular repolarization variability in healthy subjects.
机译:心室复极化动力学是心血管疾病预后的重要预测指标。心率变异性(RR间期变异性)和心室复极变异性(QT间期变异性)的数学建模是了解心室复极化动态的流行方法之一。尽管以前有人建议将ECG呼吸法(EDR)作为呼吸的替代方法,但是尚未研究呼吸运动对心室复极动力学的影响。在这项研究中,考虑了在生理和心理条件不同的两种情况下,考虑呼吸作用的重要性以及使用EDR替代呼吸的有效性,以进行心室复极变异性的线性参数建模。在第一个案例研究中,我们使用了来自Physionet的Fantasia数据库中的20位年轻健康受试者和20位老年健康受试者的ECG和呼吸数据,分析了双变量QT-RR和三变量模型结构,以研究衰老对心脏复极变异性的影响。在第二项研究中,我们使用了Physionet上来自drivedb(汽车驾驶员的压力检测)数据库的16位健康受试者的数据,针对不同的心理状况(即处于压力和无压力的状况)进行了相同的分析。我们的研究结果表明,具有呼吸信息的模型(QT-RR-RESP和QT-RR-EDR)比QT-RR模型具有更好的拟合值(p <0.05)。 EDR在描述复极变异性时,不论年龄和精神状况如何,均与呼吸作为外源性模型输入在统计学上相似(p> 0.05)。我们研究的另一个发现是,基于呼吸和EDR的模型都可以显着(p <0.05)区分不同年龄组和具有不同心理状况的健康受试者的心室复极动态,而没有呼吸或EDR的模型则无法区分这两组。这些结果确立了在健康受试者的心室复极变异性的线性参数模型中,在没有呼吸信号记录的情况下,使用呼吸的重要性以及使用EDR作为呼吸替代的有效性。

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