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MuTE: a new matlab toolbox for estimating the multivariate transfer entropy in physiological variability series

机译:muTE:一种新的matlab工具箱,用于估计生理变异序列中的多变量转移熵

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摘要

We present a new time series analysis toolbox, developed in Matlab, for the estimation of the Transfer entropy (TE) between time series taken from a multivariate dataset. The main feature of the toolbox is its fully multivariate implementation, that is made possible by the design of an approach for the non-uniform embedding (NUE) of the observed time series. The toolbox is equipped with parametric (linear) and non-parametric (based on binning or nearest neighbors) entropy estimators. All these estimators, implemented using the NUE approach in comparison with the classical approach based on uniform embedding, are tested on RR interval, systolic pressure and respiration variability series measured from healthy subjects during head-up tilt. The results support the necessity of resorting to NUE for obtaining reliable estimates of the multivariate TE in short-term cardiovascular and cardiorespiratory variability.
机译:我们提供了一个在Matlab中开发的新的时间序列分析工具箱,用于估计从多元数据集中获取的时间序列之间的传递熵(TE)。工具箱的主要特征是其完全多变量的实现,这是通过设计一种用于观察到的时间序列的非均匀嵌入(NUE)的方法而实现的。该工具箱配备了参数(线性)和非参数(基于合并或最近邻)熵估计器。与基于均匀嵌入的经典方法相比,使用NUE方法实施的所有这些估计量均在抬头倾斜期间从健康受试者测量的RR间隔,收缩压和呼吸变异性序列上进行了测试。结果支持诉诸NUE以获得短期心血管和心肺变异性中多元TE的可靠估计的必要性。

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