OBJECTIVE: Measures of transfer entropy (TE) quantify the direction and strength of coupling between two complex systems. Standard approaches assume stationarity of the observations, and therefore are unable to track time-varying changes in nonlinear information transfer with high temporal resolution. In this study, we aim to define and validate novel instantaneous measures of TE to provide an improved assessment of complex nonstationary cardiorespiratory interactions. Methods: We here propose a novel instantaneous point-process TE (ipTE) and validate its assessment as applied to cardiovascular and cardiorespiratory dynamics. In particular, heartbeat and respiratory dynamics are characterized through discrete time series, and modeled with p...
Self-entropy (SE) and transfer entropy (TE) are widely utilized in biomedical signal processing to a...
Complexity measures have been widely used to characterize the nonlinear nature of cardiovascular con...
We present the implementation to cardiovascular variability of a method for the information-theoreti...
OBJECTIVE: Measures of transfer entropy (TE) quantify the direction and strength of coupling between...
Objective: Measures of Transfer Entropy (TE) quantify the direction and strength of coupling between...
Measures of transfer entropy have been proposed to quantify the directional coupling and strength be...
Nonlinear physiological systems are characterized by complex interactions among multiple sub-system ...
Measures of entropy have been proved as powerful quantifiers of complex nonlinear systems, particula...
Although Heart Period (HP) variability is the most widely used measure to assess cardiovascular osci...
We present a framework for the estimation of transfer entropy (TE) under the conditions typical of p...
Self-entropy (SE) and transfer entropy (TE) are widely utilized in biomedical signal processing to a...
Complexity measures have been widely used to characterize the nonlinear nature of cardiovascular con...
We present the implementation to cardiovascular variability of a method for the information-theoreti...
OBJECTIVE: Measures of transfer entropy (TE) quantify the direction and strength of coupling between...
Objective: Measures of Transfer Entropy (TE) quantify the direction and strength of coupling between...
Measures of transfer entropy have been proposed to quantify the directional coupling and strength be...
Nonlinear physiological systems are characterized by complex interactions among multiple sub-system ...
Measures of entropy have been proved as powerful quantifiers of complex nonlinear systems, particula...
Although Heart Period (HP) variability is the most widely used measure to assess cardiovascular osci...
We present a framework for the estimation of transfer entropy (TE) under the conditions typical of p...
Self-entropy (SE) and transfer entropy (TE) are widely utilized in biomedical signal processing to a...
Complexity measures have been widely used to characterize the nonlinear nature of cardiovascular con...
We present the implementation to cardiovascular variability of a method for the information-theoreti...