Title :
Mutual information function assesses autonomic information flow of heart rate dynamics at different time scales
Author :
Hoyer, Dirk ; Pompe, Bernd ; Chon, Ki H. ; Hardraht, Henning ; Wicher, Carola ; Zwiener, Ulrich
Author_Institution :
Inst. for Pathophysiologie & Pathobiochemistry, Friedrich-Schiller-Univ., Jena, Germany
fDate :
4/1/2005 12:00:00 AM
Abstract :
The autonomic information flow (AIF) represents the complex communication within the Autonomic Nervous System (ANS). It can be assessed by the mutual information function (MIF) of heart rate fluctuations (HRF). The complexity of HRF is based on several interacting physiological mechanisms operating at different time scales. Therefore one prominent time scale for HRF complexity analysis is not given a priori. The MIF reflects the information flow at different time scales. This approach is defined and evaluated in the present paper. In order to aggregate relevant physiological time scales, the MIF of HRF obtained from eight adult Lewis rats during the awake state, under general anesthesia, with additional vagotomy, and additional beta1-adrenergic blockade are investigated. Physiologically relevant measures of the MIF were assessed with regard to the discrimination of these states. A simulation study of a periodically excited pendulum is performed to clarify the influence of the time scale of MIF in comparison to the Kolmogorov Sinai entropy (KSE) of that well defined system. The general relevance of the presented AIF approach was confirmed by comparing mutual information, approximate entropy, and sample entropy at their respective time scales.
Keywords :
electrocardiography; entropy; medical signal processing; neurophysiology; Kolmogorov Sinai entropy; adult Lewis rats; approximate entropy; autonomic information flow; autonomic nervous system; awake state; beta1-adrenergic blockade; complexity analysis; heart rate dynamics; heart rate fluctuations; mutual information function; periodically excited pendulum; sample entropy; vagotomy; Autonomic nervous system; Biomedical measurements; Control systems; Entropy; Fluctuations; Heart rate; Heart rate variability; Mutual information; Particle measurements; Time measurement; Autonomic information flow; autonomic nervous system; heart rate variability; mutual information function; Algorithms; Animals; Autonomic Nervous System; Computer Simulation; Electrocardiography; Heart Rate; Models, Cardiovascular; Models, Neurological; Rats; Rats, Inbred Lew; Time Factors; Vagus Nerve; Wakefulness;
Journal_Title :
Biomedical Engineering, IEEE Transactions on
DOI :
10.1109/TBME.2005.844023