Simulating Dynamics of Circulation in the Awake State and Different Stages of Sleep Using Non-autonomous Mathematical Model With Time Delay
暂无分享,去创建一个
Yurii M. Ishbulatov | J. Kurths | T. Penzel | V. Ponomarenko | M. Prokhorov | A. Karavaev | A. Kiselev | O. Semyachkina-Glushkovskaya | A. Runnova | A. N. Hramkov | A. Hramkov
[1] Yurii M. Ishbulatov,et al. Mathematical modeling of the cardiovascular autonomic control in healthy subjects during a passive head-up tilt test , 2020, Scientific Reports.
[2] M. Hill,et al. Regulation of blood flow in small arteries: mechanosensory events underlying myogenic vasoconstriction , 2020, Journal of exercise rehabilitation.
[3] M. Baumert,et al. The Inconsistent Nature of Heart Rate Variability During Sleep in Normal Children and Adolescents , 2020, Frontiers in Cardiovascular Medicine.
[4] S. A. Mironov,et al. Low-frequency variability in photoplethysmographic waveform and heart rate during on-pump cardiac surgery with or without cardioplegia , 2020, Scientific Reports.
[5] Ronald M. Aarts,et al. Lying Awake at Night: Cardiac Autonomic Activity in Relation to Sleep Onset and Maintenance , 2020, Frontiers in Neuroscience.
[6] Autonomic control is a source of dynamical chaos in the cardiovascular system. , 2019, Chaos.
[7] A. Tall,et al. How broken sleep promotes cardiovascular disease , 2019, Nature.
[8] I. Colrain,et al. Dynamic coupling between the central and autonomic nervous systems during sleep: A review , 2018, Neuroscience & Biobehavioral Reviews.
[9] Anatoly S. Karavaev,et al. Numerical modeling of dynamics of heart rate and arterial pressure during passive orthostatic test , 2018, Saratov Fall Meeting.
[10] D. Horstkotte,et al. Interactions of Sleep Apnea, the Autonomic Nervous System, and Its Impact on Cardiac Arrhythmias , 2018, Current Sleep Medicine Reports.
[11] A. Porta,et al. Assessing multiscale complexity of short heart rate variability series through a model-based linear approach. , 2017, Chaos.
[12] А С Караваев,et al. Phase synchronization of elements of autonomic control in mathematical model of cardiovascular system , 2017 .
[13] I V Sysoev,et al. Recovery of couplings and parameters of elements in networks of time-delay systems from time series. , 2016, Physical review. E.
[14] S. A. Mironov,et al. A comprehensive assessment of cardiovascular autonomic control using photoplethysmograms recorded from the earlobe and fingers , 2016, Physiological measurement.
[15] Yurii M. Ishbulatov,et al. Method of estimation of synchronization strength between low-frequency oscillations in heart rate variability and photoplethysmographic waveform variability , 2016 .
[16] Anatoly S. Karavaev,et al. Model of human cardiovascular system with a loop of autonomic regulation of the mean arterial pressure. , 2016, Journal of the American Society of Hypertension : JASH.
[17] O. Wolkenhauer. Why model? , 2013, Front. Physiol..
[18] Michael C. K. Khoo,et al. Sleep-related changes in autonomic control in obstructive sleep apnea: A model-based perspective , 2013, Respiratory Physiology & Neurobiology.
[19] M. Khoo,et al. Understanding the Metabolic Syndrome: A Modeling Perspective , 2013, IEEE Reviews in Biomedical Engineering.
[20] Thomas Penzel,et al. Phase transitions in physiologic coupling , 2012, Proceedings of the National Academy of Sciences.
[21] S. Chopra,et al. Neuro-endocrine regulation of blood pressure , 2011, Indian journal of endocrinology and metabolism.
[22] P. Clifford. Local control of blood flow. , 2011, Advances in physiology education.
[23] Limei Cheng,et al. An integrative model of respiratory and cardiovascular control in sleep-disordered breathing , 2010, Respiratory Physiology & Neurobiology.
[24] Thomas Penzel,et al. Aging effects on cardiac and respiratory dynamics in healthy subjects across sleep stages. , 2010, Sleep.
[25] Garry Egger,et al. Castaways , 2009 .
[26] A. R. Kiselev,et al. Synchronization of low-frequency oscillations in the human cardiovascular system. , 2009, Chaos.
[27] Leon Glass,et al. Introduction to controversial topics in nonlinear science: is the normal heart rate chaotic? , 2009, Chaos.
[28] Niels Wessel,et al. Is the normal heart rate "chaotic" due to respiration? , 2009, Chaos.
[29] Ivanov PCh. Scale-invariant aspects of cardiac dynamics across sleep stages and circadian phases. , 2006, EMBC 2006.
[30] H. Stanley,et al. Model for complex heart rate dynamics in health and diseases. , 2005, Physical review. E, Statistical, nonlinear, and soft matter physics.
[31] Anatoly S. Karavaev,et al. Reconstruction of time-delayed feedback systems from time series , 2005 .
[32] D. Ganten,et al. Humoral and neurohormonal aspects of blood pressure regulation: Focus on angiotensin , 2005, Klinische Wochenschrift.
[33] L. Mulder,et al. Introducing a baroreflex model for studying cardiovascular effects of mental workload. , 2004, Psychophysiology.
[34] M. Bilge,et al. Cardiac autonomic activity in obstructive sleep apnea: time-dependent and spectral analysis of heart rate variability using 24-hour Holter electrocardiograms. , 2004, Texas Heart Institute journal.
[35] M D Prokhorov,et al. Synchronization between main rhythmic processes in the human cardiovascular system. , 2003, Physical review. E, Statistical, nonlinear, and soft matter physics.
[36] Jan W. Kantelhardt,et al. Modeling transient correlations in heartbeat dynamics during sleep , 2003 .
[37] H. Stanley,et al. Characterization of sleep stages by correlations in the magnitude and sign of heartbeat increments. , 2000, Physical review. E, Statistical, nonlinear, and soft matter physics.
[38] A. Varri,et al. The SIESTA project polygraphic and clinical database , 2001, IEEE Engineering in Medicine and Biology Magazine.
[39] S. Malpas,et al. Slow oscillations in blood pressure via a nonlinear feedback model. , 2001, American journal of physiology. Regulatory, integrative and comparative physiology.
[40] Johnny T. Ottesen,et al. Modelling the dynamical baroreflex-feedback control , 2000 .
[41] Ivanov PCh,et al. Sleep-wake differences in scaling behavior of the human heartbeat: analysis of terrestrial and long-term space flight data. , 1999, Europhysics letters.
[42] Anastasios Bezerianos,et al. Radial basis function neural networks for the characterization of heart rate variability dynamics , 1999, Artif. Intell. Medicine.
[43] Mauro Ursino,et al. Interaction between carotid baroregulation and the pulsating heart: a mathematical model. , 1998, American journal of physiology. Heart and circulatory physiology.
[44] Hanspeter Herzel,et al. Bifurcations in a nonlinear model of the baroreceptor-cardiac reflex , 1998 .
[45] Ivanov PCh,et al. Stochastic feedback and the regulation of biological rhythms. , 1997, Europhysics letters.
[46] A. Goldberger. Non-linear dynamics for clinicians: chaos theory, fractals, and complexity at the bedside , 1996, The Lancet.
[47] G. Breithardt,et al. Heart rate variability: standards of measurement, physiological interpretation and clinical use. Task Force of the European Society of Cardiology and the North American Society of Pacing and Electrophysiology. , 1996 .
[48] M. Rosenstein,et al. A practical method for calculating largest Lyapunov exponents from small data sets , 1993 .
[49] F. Abboud,et al. Sympathetic-nerve activity during sleep in normal subjects. , 1993, The New England journal of medicine.
[50] J. T. da Costa,et al. [Variant angina]. , 1989, Revista portuguesa de cardiologia : orgao oficial da Sociedade Portuguesa de Cardiologia = Portuguese journal of cardiology : an official journal of the Portuguese Society of Cardiology.
[51] G. Varoneckas,et al. Heart rhythm control during sleep. , 1984, Psychophysiology.
[52] L. Zir,et al. Variant angina associated with angiographically demonstrated coronary artery spasm and REM sleep. , 1973, The American journal of the medical sciences.
[53] T. G. Coleman,et al. Circulation: overall regulation. , 1972, Annual review of physiology.
[54] H. Mcintosh,et al. The association of nocturnal angina pectoris with dreaming. , 1965, Annals of internal medicine.
[55] H. Warner,et al. The Frequency‐Dependent Nature of Blood Pressure Regulation by the Carotid Sinus Studied with an Electric Analog , 1958, Circulation research.
[56] S. Velan,et al. A Practical Method , 1936 .
[57] O. Frank,et al. Die grundform des arteriellen pulses , 1899 .