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Predicting termination of atrial fibrillation based on the structure and quantification of the recurrence plot.

机译:根据复发图的结构和定量预测房颤的终止。

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摘要

Predicting the spontaneous termination of the atrial fibrillation (AF) leads to not only better understanding of mechanisms of the arrhythmia but also the improved treatment of the sustained AF. A novel method is proposed to characterize the AF based on structure and the quantification of the recurrence plot (RP) to predict the termination of the AF. The RP of the electrocardiogram (ECG) signal is firstly obtained and eleven features are extracted to characterize its three basic patterns. Then the sequential forward search (SFS) algorithm and Davies-Bouldin criterion are utilized to select the feature subset which can predict the AF termination effectively. Finally, the multilayer perceptron (MLP) neural network is applied to predict the AF termination. An AF database which includes one training set and two testing sets (A and B) of Holter ECG recordings is studied. Experiment results show that 97% of testing set A and 95% of testing set B are correctly classified. It demonstrates that this algorithm has the ability to predict the spontaneous termination of the AF effectively.
机译:预测心房纤颤(AF)的自发终止不仅可以更好地了解心律不齐的机制,而且可以改善持续性AF的治疗方法。提出了一种新颖的方法来表征AF,该方法基于结构和定量分析复发图(RP)来预测AF的终止。首先获得心电图(ECG)信号的RP,并提取11个特征以表征其三个基本模式。然后利用顺序前向搜索(SFS)算法和Davies-Bouldin准则来选择可以有效预测AF终止的特征子集。最后,将多层感知器(MLP)神经网络应用于预测AF终止。研究了一个包括一个训练集和两个动态心电图记录测试集(A和B)的AF数据库。实验结果表明正确分类了97%的测试集A和95%的测试集B。证明了该算法具有有效预测房颤自发终止的能力。

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