利用样本熵预测心房颤动的百分比

Muammar Sadrawi, Bhekumuzi M. Mathunjwa, J. Shieh, K. Haraikawa, J. Chien, H. Guo, M. Abbod
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引用次数: 1

摘要

心房颤动是人类最常见的心律失常。本文使用样本熵和房颤百分比作为衡量房颤规律性的指标。为了假设房颤的百分比,我们处理了25例房颤患者的长期心电图记录,共299次房颤发作。MIT-BIH房颤数据库中所有受试者的百分比断点均值和SD为0.606±0.086,样本熵为0.352±0.151。100% AF时样本熵的均值和标准差为1.067±0.452。该数据用于预测给定样本熵值下AF的百分比。我们的研究得出结论,AF的早期检测可以由AF已经发生的60%开始。
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Predicting the percentage of atrial fibrillation using sample entropy
Atrial fibrillation is the most commonly confronted cardiac arrhythmia in humans. This paper is written to use sample entropy and percentage of atrial fibrillation as a measure of regularity to measure AF. To assume the percentage of AF, 25 long-term ECG recordings of human subjects with atrial fibrillation containing a total of 299 AF episodes were processed. The mean and SD of percentage breaking point in all the subjects from the MIT-BIH Atrial Fibrillation database was 0.606±0.086, and its sample entropy is 0.352±0.151. The mean and SD for sample entropy at 100% AF is 1.067±0.452. This data is used to predict the percentage of AF at a given sample entropy value. Our study concludes that the early detection of AF can be initiated by the AF already happened for 60%.
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