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运动应激试验中 QT-RR 时变延迟估计的性能评估。

Performance Evaluation of QT-RR Adaptation Time Lag Estimation in Exercise Stress Testing.

出版信息

IEEE Trans Biomed Eng. 2024 Nov;71(11):3170-3180. doi: 10.1109/TBME.2024.3410008. Epub 2024 Oct 25.

Abstract

BACKGROUND

Slower adaptation of the QT interval to sudden changes in heart rate has been identified as a risk marker of ventricular arrhythmia. The gradual changes observed in exercise stress testing facilitates the estimation of the QT-RR adaptation time lag.

METHODS

The time lag estimation is based on the delay between the observed QT intervals and the QT intervals derived from the observed RR intervals using a memoryless transformation. Assuming that the two types of QT interval are corrupted with either Gaussian or Laplacian noise, the respective maximum likelihood time lag estimators are derived. Estimation performance is evaluated using an ECG simulator which models change in RR and QT intervals with a known time lag, muscle noise level, respiratory rate, and more. The accuracy of T-wave end delineation and the influence of the learning window positioning for model parameter estimation are also investigated.

RESULTS

Using simulated datasets, the results show that the proposed approach to estimation can be applied to any changes in heart rate trend as long as the frequency content of the trend is below a certain frequency. Moreover, using a proper position of the learning window for exercise so that data compensation reduces the effect of nonstationarity, a lower mean estimation error results for a wide range of time lags. Using a clinical dataset, the Laplacian-based estimator shows a better discrimination between patients grouped according to the risk of suffering from coronary artery disease.

CONCLUSIONS

Using simulated ECGs, the performance evaluation of the proposed method shows that the estimated time lag agrees well with the true time lag.

摘要

背景

QT 间期对心率突然变化的适应性较慢已被确定为室性心律失常的风险标志物。运动应激测试中观察到的逐渐变化有助于估计 QT-RR 适应时滞。

方法

时滞估计基于观察到的 QT 间期与使用无记忆变换从观察到的 RR 间期导出的 QT 间期之间的延迟。假设两种类型的 QT 间期都受到高斯或拉普拉斯噪声的污染,分别推导出各自的最大似然时滞估计器。使用 ECG 模拟器评估估计性能,该模拟器使用已知时滞、肌肉噪声水平、呼吸率等模型 RR 和 QT 间隔的变化。还研究了 T 波末端描绘的准确性和模型参数估计的学习窗口定位的影响。

结果

使用模拟数据集的结果表明,只要趋势的频率内容低于某个频率,就可以将估计的这种方法应用于任何心率趋势的变化。此外,通过适当定位学习窗口进行运动,以便数据补偿减少非平稳性的影响,对于广泛的时滞范围,会得到更低的平均估计误差。使用临床数据集,基于拉普拉斯的估计器在根据患冠状动脉疾病风险对患者进行分组时表现出更好的区分能力。

结论

使用模拟 ECG,对所提出方法的性能评估表明,估计的时滞与真实时滞非常吻合。

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