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首页> 外文期刊>Annals of Biomedical Engineering: The Journal of the Biomedical Engineering Society >Recognition of Ventricular Extrasystoles Over the Reconstructed Phase Space of Electrocardiogram
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Recognition of Ventricular Extrasystoles Over the Reconstructed Phase Space of Electrocardiogram

机译:心电图重构相空间上的心室前收缩的识别

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摘要

Distinguishing ventricular extrasystoles from normal heartbeats is crucial to cardiac arrhythmia analysis. This paper proposes novel morphological descriptors, the major portrait partition area (MPPA) and point distribution percentage (PDP), which are extracted from the reconstructed phase space of the QRS complex. These measures can be linked to QRS width and prolonged ventricular contraction, and offer several advantages over traditional characterization of the QRS structure: it does not require QRS boundary detection, is robust under R-peak misalignment, and including some information from nearby points. The first four principal components of MPPA variables and PDPs in the first and the third quadrants of the phase space diagram were used as inputs of neural networks. The performance of networks in distinguishing premature ventricular contraction events from normal heartbeats were evaluated under a series of 50 cross-validations based on the electrocardiogram data taken from the MIT/BIH arrhythmia database. The sensitivity and specificity obtained using the aforementioned MPPA principal components and PDPs as inputs were similar to those obtained using wavelet features and Hermite coefficients. However, the phase space information performed better in situations of noise contaminations and waveform deformations.
机译:区分正常心律的室性收缩期对心律不齐的分析至关重要。本文提出了从QRS波群的重构相空间中提取的新颖的形态学描述符,即主要肖像分割区(MPPA)和点分布百分比(PDP)。这些措施可以与QRS宽度和延长的心室收缩联系起来,与QRS结构的传统特征相比,具有几个优点:它不需要QRS边界检测,在R峰错位下具有鲁棒性,并且包括来自附近点的一些信息。相空间图的第一和第三象限中MPPA变量和PDP的前四个主要成分被用作神经网络的输入。根据从MIT / BIH心律失常数据库获取的心电图数据,在一系列50次交叉验证下,评估了网络在区分早搏性室速事件与正常心律方面的性能。使用上述MPPA主成分和PDP作为输入获得的灵敏度和特异性与使用小波特征和Hermite系数获得的灵敏度和特异性相似。但是,在噪声污染和波形变形的情况下,相空间信息的性能更好。

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