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A mixture of fuzzy filters applied to the analysis of heartbeat intervals

机译:模糊滤波器的混合物应用于心跳间隔分析

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摘要

This study provides a stochastic modeling of the heartbeat intervals using a mixture of Takagi–Sugeno type fuzzy filters. The model parameters are inferred under variational Bayes (VB) framework. The model of the heartbeat intervals is in the form of a history-dependent probability density. The parameters, characterizing the heartbeat intervals probability density, include the estimated parameters of different fuzzy filters and may serve as the features of the heartbeat interval series. The features of the heartbeat intervals provide a description of the physiological state of an individual. A novelty of our analysis method is that the physiological state is predicted as a part of the features extraction procedure. This is done via deriving, using VB paradigm, an analytical expression for the posterior distribution that the observed heartbeat intervals have been generated by the stochastic model of the physiological state. The method is illustrated with the data of 40 healthy subjects studied in a tilt-table experiment.
机译:这项研究使用Takagi–Sugeno型模糊滤波器的混合物提供了心跳间隔的随机模型。在可变贝叶斯(VB)框架下推断模型参数。心跳间隔的模型采用与历史相关的概率密度的形式。表征心跳间隔概率密度的参数包括不同模糊滤波器的估计参数,并且可以用作心跳间隔序列的特征。心跳间隔的特征提供了个体生理状态的描述。我们的分析方法的新颖之处在于,将生理状态预测为特征提取过程的一部分。这是通过使用VB范式导出后验分布的解析表达式来完成的,即观察到的心跳间隔已由生理状态的随机模型生成。通过在倾斜台实验中研究的40名健康受试者的数据说明了该方法。

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