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首页> 外文期刊>Animal Science Journal >Fetal heart rate monitoring from maternal body surface potentials using independent component analysis
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Fetal heart rate monitoring from maternal body surface potentials using independent component analysis

机译:使用独立分量分析从孕妇体表电位监测胎儿心率

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摘要

The fetal heart rate is indispensable for monitoring the health of unborn cattle fetuses. To monitor the fetal heart rate, a method employing independent component analysis (ICA) to extract the fetal electrocardiogram (fECG) from potentials measured on the maternal body surface and composed of a mixture of the maternal ECG (mECG), fECG, baseline drift and noise is described. A mixing of the raw data was simplified using a linear time-invariant model To separate the fECG from the mECG, baseline drift,and noise, an ICA strategy was applied, using a hyperbolic tangent as the contrast function and treating mutual information with the minimization principle to find the optimum demixing matrix to derive the fECG from the measured signals. After the feasibility of this method was shown on simulated signals obtained by randomly mixing pure fECG, pure mECG, low frequency sinusoidal drift and noise, real signals from three cloned pregnant Holstein cows with 157, 177 and 224-day gestation periods were used to verify the separation method. The results show that the fECG, mECG, low-frequency sinusoidal drift and noise can be clearly segregated in simulations, and that the fECG, mECG, baseline drift and noise can be successfully derived from real signals. TheICA approach has great potential in effectively detecting the fECG from maternal body surface potentials.
机译:胎儿心率对于监测未出生的牛胎儿的健康是必不可少的。为了监测胎儿心率,一种采用独立成分分析(ICA)的方法是从孕产妇身体表面测得的电位中提取胎儿心电图(fECG),该方法由孕产妇ECG(mECG),fECG,基线漂移和描述了噪音。使用线性时不变模型简化了原始数据的混合。为了将fECG与mECG,基线漂移和噪声分开,应用了ICA策略,使用双曲正切作为对比函数并以最小化方式处理互信息原理是找到最佳解混矩阵以从测量信号中导出fECG。在通过将纯fECG,纯mECG,低频正弦漂移和噪声随机混合获得的模拟信号上显示了该方法的可行性之后,使用来自三个克隆的荷斯坦奶牛的真实信号(分别具有157、177和224天的孕育期)进行验证分离方法。结果表明,在仿真中可以清楚地区分fECG,mECG,低频正弦漂移和噪声,并且可以从真实信号中成功导出fECG,mECG,基线漂移和噪声。 ICA方法在从孕妇体表电位中有效检测fECG方面具有巨大潜力。

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