Title :
Multiscale probability density function analysis: non-Gaussian and scale-Invariant fluctuations of healthy human heart rate
Author :
Kiyono, Ken ; Struzik, Zbigniew R. ; Aoyagi, Naoko ; Yamamoto, Yoshiharu
Author_Institution :
Graduate Sch. of Educ., Univ. of Tokyo, Japan
Abstract :
For a detailed characterization of intermittency and non-Gaussianity of human heart rate, we introduce an analysis method to investigate the deformation process of the probability density function (PDF) of detrended increments when going from fine to coarse scales. To characterize the scale dependence of the multiscale PDF, we use two methods: 1) calculation of Kullback-Leibler relative entropy; 2) parameter estimation based on Castaing´s equation (B. Castaing et al., 1990). We compare scale-dependence of the increment PDFs between actual heart rate fluctuations and artificially generated Gaussian and non-Gaussian noise, including a widely used autoregressive model and a recently proposed multifractal model based on a random cascade process. Our analysis highlights an essential difference between heart rate fluctuations and those generated by other models. The outstanding feature of human heart rate is the robust scale-invariance of the non-Gaussian PDF, which is preserved not only in a quiescent condition, but also in a dynamic state during waking hours, in which the mean level of heart rate is dramatically changing. Our results strongly suggest the need for revising existing models of heart rate variability to incorporate the scale-invariance in the PDF.
Keywords :
autoregressive processes; biomechanics; cardiology; deformation; fluctuations; fractals; haemodynamics; medical signal processing; parameter estimation; probability; Castaing equation; Gaussian noise; Kullback-Leibler relative entropy; actual heart rate fluctuations; autoregressive model; deformation; healthy human heart rate; heart rate variability; intermittency; multifractal model; multiscale probability density function analysis; nonGaussian fluctuations; parameter estimation; random cascade; scale-invariant fluctuations; waking hours; Entropy; Equations; Fluctuations; Fractals; Gaussian noise; Heart rate; Humans; Noise generators; Parameter estimation; Probability density function; Intermittency; multiscaling property; non-Gaussian probability density function; scale invariance; Adult; Algorithms; Computer Simulation; Data Interpretation, Statistical; Diagnosis, Computer-Assisted; Electrocardiography; Heart; Heart Rate; Humans; Male; Models, Cardiovascular; Models, Statistical; Normal Distribution; Reference Values; Reproducibility of Results; Sensitivity and Specificity; Statistical Distributions;
Journal_Title :
Biomedical Engineering, IEEE Transactions on
DOI :
10.1109/TBME.2005.859804