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首页> 外文期刊>Medical engineering & physics. >A probability density function method for detecting atrial fibrillation using R-R intervals.
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A probability density function method for detecting atrial fibrillation using R-R intervals.

机译:一种使用R-R间隔检测房颤的概率密度函数方法。

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摘要

A probability density function (PDF) method is proposed for investigating the structure of the reconstructed attractor of R-R intervals. By constructing the PDF of distance between two points in the reconstructed phase space of R-R intervals of normal sinus rhythm (NSR) and atrial fibrillation (AF), it is found that the distributions of PDF of NSR and AF R-R intervals have significant differences. By taking advantage of their differences, a characteristic parameter k(n), which represents the sum of n points slope in filtered PDF curve, is put forward to detect both 400 segments of NSR and AF R-R intervals from the MIT-BIH Atrial Fibrillation database. Parameters such as number of R-R intervals, number of embedding dimensions and slope are optimized for the best detection performance. Results demonstrate that the new algorithm has a fast response speed with R-R intervals as short as 40, and shows a sensitivity of 0.978, and a specificity of 0.990 in the best detecting performance.
机译:提出了一种概率密度函数(PDF)方法,用于研究R-R区间的重构吸引子的结构。通过构造正常窦性心律(NSR)和房颤(AF)的R-R间隔的重构相空间中两点之间的距离PDF,发现NSR和AF R-R间隔的PDF分布具有显着差异。通过利用它们的差异,提出了代表过滤后的PDF曲线中n点斜率之和的特征参数k(n),以从MIT-BIH心房颤动数据库中检测400个NSR和AF RR间隔。优化了诸如R-R间隔数,嵌入尺寸数和斜率之类的参数,以实现最佳检测性能。结果表明,该新算法具有R-R间隔短至40的快速响应速度,在最佳检测性能中显示出0.978的灵敏度和0.990的特异性。

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