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引用次数: 2

摘要

在远程医疗中,心脏信号的传输或自动动态心电图的诊断,建立心跳模型是很重要的。本研究的目的是利用径向基函数(RBF)对心电数据进行神经网络建模。心电动态电位的处理和切割帮助我们找到了实现该模型的五个高斯函数的最佳线性组合。利用一组高斯函数和正交正回归算法,我们在初始化步骤中获得了10-4的误差。采用梯度算法对模型进行优化。
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Treatment of cardiac signal for a modeling by RBF
In telemedicine, the transmission of the cardiac signal or for the diagnosis of an automatic Holter, it is important to model the heartbeat. Our aim in this work is the modeling of the ECG data by neural networks using Radial Base Function RBF. The treatment and cutting of ECG Holter helped us to find the best linear combination of five Gaussians that realizes this model. With a bank of Gaussian functions and using the algorithm Orthogonal Regressive Forward, we achieved an error of 10-4 in the initialization step. The optimization of this modeling is performed by the gradient algorithm.
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