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利用贝叶斯估计减少噪声对心电图逆问题的影响。

Reduction of Effects of Noise on the Inverse Problem of Electrocardiography with Bayesian Estimation.

作者信息

Dogrusoz Y Serinagaoglu, Bear L R, Svehlikova J, Coll-Font J, Good W, Dubois R, van Dam E, MacLeod R S

机构信息

Electrical and Electronics Engineering Department, METU, Ankara, Turkey.

IHU-LIRYC, Université de Bordeaux, Bordeaux, France.

出版信息

Comput Cardiol (2010). 2018 Sep;45. doi: 10.22489/CinC.2018.309. Epub 2019 Jun 24.

Abstract

To overcome the ill-posed nature of the inverse problem of electrocardiography (ECG) and stabilize the solutions, regularization is used. Despite several studies on noise, effect of prefiltering of ECG signals on the regularized inverse solutions has not been explored. We used Bayesian estimation for solving the inverse ECG problem with and without applying various prefiltering methods, and evaluated our results using experimental data that came from a Langendorff-perfused pig heart suspended in a human-shaped torso-tank. Epicardial electrograms were recorded during RV pacing using a 108-electrode array, simultaneously with ECGs from 128 electrodes embedded in the tank surface. Leave-one-beat-out protocol was used to obtain the prior probability density function (pdf) of electro-grams and noise statistics. Noise pdf was assumed to be zero mean-Gaussian, with covariance assumptions: a) independent and identically distributed (noi-iid), b) correlated (noi-corr). Reconstructed electrograms and activation times were compared to those directly recorded by the sock for 3 beats selected from the recording. Noi-corr is superior to noi-iid when the training set is a good match to data, but for applications requiring activation time derivation, careful selection of preprocessing methods, in particular to adequately remove high-frequency noise, and an appropriate noise model is needed.

摘要

为了克服心电图(ECG)逆问题的不适定性并稳定解,采用了正则化方法。尽管已有多项关于噪声的研究,但尚未探讨ECG信号预滤波对正则化逆解的影响。我们使用贝叶斯估计来求解有无应用各种预滤波方法时的ECG逆问题,并使用来自悬浮在人形躯干水箱中的Langendorff灌注猪心脏的实验数据评估我们的结果。在右心室起搏期间,使用108电极阵列记录心外膜电图,同时记录嵌入水箱表面的128个电极的心电图。采用逐搏剔除协议来获得电图的先验概率密度函数(pdf)和噪声统计信息。假设噪声pdf为零均值高斯分布,协方差假设为:a)独立同分布(noi-iid),b)相关(noi-corr)。将重建的电图和激活时间与从记录中选择的3个搏动直接由袜子记录的结果进行比较。当训练集与数据匹配良好时,noi-corr优于noi-iid,但对于需要推导激活时间的应用,需要仔细选择预处理方法,特别是要充分去除高频噪声,并需要合适的噪声模型。

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