We explore the degree to which concepts developed in statistical physics can be usefully applied to physiological signals. We illustrate the problems related to physiologic signal analysis with representative examples of human heartbeat dynamics under healthy and pathologic conditions. We first review recent progress based on two analysis methods, power spectrum and detrended fluctuation analysis, used to quantify long-range power-law correlations in noisy heartbeat fluctuations. The finding of power-law correlations indicates presence of scale-invariant, fractal structures in the human heartbeat. These fractal structures are represented by self-affine cascades of beat-to-beat fluctuations revealed by wavelet decomposition at different time...
Nonlinear and non-Gaussian analyses contribute to a comprehensive characterization of autonomic nerv...
Nonlinear and non-Gaussian analyses contribute to a comprehensive characterization of autonomic nerv...
The complexity of the cardiac rhythm is demonstrated to exhibit self-affine multifractal variability...
We explore the degree to which concepts developed in statistical physics can be usefully applied to ...
Abstract. Recent evidence suggests that physiological signals under healthy condi-tions may have a f...
Abstract. Even under healthy, basal conditions, physiologic systems show erratic fluc-tuations resem...
Abstract. Even under healthy, basal conditions, physiologic systems show erratic fluc-tuations resem...
There is evidence that physiological signals under healthy conditions may have a fractal temporal st...
There is evidence that physiological signals under healthy conditions may have a fractal temporal st...
Nonlinear and non-Gaussian analyses contribute to a comprehensive characterization of autonomic nerv...
Nonlinear and non-Gaussian analyses contribute to a comprehensive characterization of autonomic nerv...
Nonlinear and non-Gaussian analyses contribute to a comprehensive characterization of autonomic nerv...
Nonlinear and non-Gaussian analyses contribute to a comprehensive characterization of autonomic nerv...
The complexity of the cardiac rhythm is demonstrated to exhibit self-affine multifractal variability...
Nonlinear and non-Gaussian analyses contribute to a comprehensive characterization of autonomic nerv...
Nonlinear and non-Gaussian analyses contribute to a comprehensive characterization of autonomic nerv...
Nonlinear and non-Gaussian analyses contribute to a comprehensive characterization of autonomic nerv...
The complexity of the cardiac rhythm is demonstrated to exhibit self-affine multifractal variability...
We explore the degree to which concepts developed in statistical physics can be usefully applied to ...
Abstract. Recent evidence suggests that physiological signals under healthy condi-tions may have a f...
Abstract. Even under healthy, basal conditions, physiologic systems show erratic fluc-tuations resem...
Abstract. Even under healthy, basal conditions, physiologic systems show erratic fluc-tuations resem...
There is evidence that physiological signals under healthy conditions may have a fractal temporal st...
There is evidence that physiological signals under healthy conditions may have a fractal temporal st...
Nonlinear and non-Gaussian analyses contribute to a comprehensive characterization of autonomic nerv...
Nonlinear and non-Gaussian analyses contribute to a comprehensive characterization of autonomic nerv...
Nonlinear and non-Gaussian analyses contribute to a comprehensive characterization of autonomic nerv...
Nonlinear and non-Gaussian analyses contribute to a comprehensive characterization of autonomic nerv...
The complexity of the cardiac rhythm is demonstrated to exhibit self-affine multifractal variability...
Nonlinear and non-Gaussian analyses contribute to a comprehensive characterization of autonomic nerv...
Nonlinear and non-Gaussian analyses contribute to a comprehensive characterization of autonomic nerv...
Nonlinear and non-Gaussian analyses contribute to a comprehensive characterization of autonomic nerv...
The complexity of the cardiac rhythm is demonstrated to exhibit self-affine multifractal variability...