Key result
The proposed VARFI-based methodology detected physiologically meaningful multiscale patterns of complexity and captured significant variations missed by standard methods.
Why the study?
Standard multiscale entropy is unsuitable for evaluating the dynamical complexity of short multivariate cardiovascular time series analyzed at long time scales.
A novel VARFI-based method improves the assessment of multiscale complexity in cardiovascular and respiratory time series by accounting for long-range correlations.
Entropy analysis may aid cardiovascular state characterization; leaves open prospective validation before diagnostic use.
Assessing the dynamical complexity of biological time series represents an important topic with potential applications ranging from the characterization of physiological states and pathological conditions to the calculation of diagnostic parameters. In particular, cardiovascular time series exhibit a variability produced by different physiological control mechanisms coupled with each other, which take into account several variables and operate across multiple time scales that result in the coexistence of short term dynamics and long-range correlations. The most widely employed technique to evaluate the dynamical complexity of a time series at different time scales, the so-called multiscale entropy (MSE), has been proven to be unsuitable in the presence of short multivariate time series to be analyzed at long time scales. This work aims at overcoming these issues via the introduction of a new method for the assessment of the multiscale complexity of multivariate time series. The method first exploits vector autoregressive fractionally integrated (VARFI) models to yield a linear parametric representation of vector stochastic processes characterized by short- and long-range correlations. Then, it provides an analytical formulation, within the theory of state-space models, of how the VARFI parameters change when the processes are observed across multiple time scales, which is finally exploited to derive MSE measures relevant to the overall multivariate process or to one constituent scalar process. The proposed approach is applied on cardiovascular and respiratory time series to assess the complexity of the heart period, systolic arterial pressure and respiration variability measured in a group of healthy subjects during conditions of postural and mental stress. Our results document that the proposed methodology can detect physiologically meaningful multiscale patterns of complexity documented previously, but can also capture significant variations in complexity which cannot be observed using standard methods that do not take into account long-range correlations.
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Martins et al. (2020) studied Healthy subjects. Vector autoregressive fractionally integrated (VARFI) models vs. Standard methods was evaluated on Complexity of the heart period, systolic arterial pressure and respiration variability. The proposed VARFI-based methodology detected physiologically meaningful multiscale patterns of complexity and captured significant variations missed by standard methods.
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