首页> 外文会议>Computing in Cardiology 2011 >Time-frequency analysis of atrial fibrillation comparing morphology-clustering based QRS-T cancellation with blind source separation in multi-lead surface ECG recordings
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Time-frequency analysis of atrial fibrillation comparing morphology-clustering based QRS-T cancellation with blind source separation in multi-lead surface ECG recordings

机译:心房颤动的时频分析比较基于形态簇的QRS-T消除与多导联表面ECG记录中的盲源分离

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摘要

To separate the atrial (AA) from the ventricular (VA) electrical activity in surface ECG recordings of atrial fibrillation (AF), various methods have been proposed, such as QRS-T cancellation by beat-averaged template subtraction, and blind source separation (BSS). Although QRS-T cancellation is computationally more efficient than BSS, and allows the preservation of spatial information, it is sensitive to morphology changes, which produce large residuals in AA, biasing the frequency analysis. Aim of this study was: (i) to propose an improved approach to VA cancellation based on k-means morphology clustering (MC); (ii) to validate its ability to estimate AF dominant frequency (DF) on a standard database with intra-cardiac and surface ECG recordings (IAFDB, Physionet.org); (iii) to compare the temporal evolution of the spectral content of MC-estimated AA (MC-AA) with the one obtained from a reference BSS method based on Independent component analysis (ICA) and second-order blind identification (SOBI), in 14 body surface potential map (BSPM) recordings. QRS-T amplitude in MC-AA was significantly lower (p<0.001) than in ECG (in closest BSPM channel to V1). The validation on IAFDB showed no significant difference in DF estimation (p=0.546) in 17 recordings. Also no significant difference in DF estimation (p=0.208) with respect to the reference BSS method was observed. The proposed QRS-T cancellation method effectively suppresses VA and accurately estimates DF compared to an established BSS method.
机译:为了在房颤(AF)的表面ECG记录中将心房(AA)与心室(VA)的电活动分开,已提出了多种方法,例如通过搏动平均模板减法消除QRS-T和盲源分离( BSS)。尽管QRS-T消除在计算上比BSS更有效,并且可以保留空间信息,但是它对形态变化敏感,形态变化会在AA中产生大量残差,从而使频率分析产生偏差。这项研究的目的是:(i)基于k均值形态聚类(MC)提出一种改进的VA抵消方法; (ii)在具有心脏内和表面ECG记录的标准数据库(IAFDB,Physionet.org)上验证其估计AF主导频率(DF)的能力; (iii)比较MC估计的AA(MC-AA)的光谱含量与从基于独立分量分析(ICA)和二阶盲识别(SOBI)的参考BSS方法获得的光谱含量随时间的变化, 14个体表电位图(BSPM)记录。 MC-AA中的QRS-T幅度显着低于ECG(在最接近V1的BSPM通道中)(p <0.001)。对IAFDB的验证显示,在17个记录中DF估计上没有显着差异(p = 0.546)。此外,相对于参考BSS方法,在DF估计中也没有观察到显着差异(p = 0.208)。与已建立的BSS方法相比,拟议的QRS-T抵消方法可有效抑制VA并准确估算DF。

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