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Annals of Biomedical Engineering|January 1, 1996
Chaotic oscillations in microvessel arterial networksS Cavalcanti, M UrsinoMicrovascular Research|March 1, 1992
Role of the myogenic mechanism in the genesis of microvascular oscillations (vasomotion): analysis with a mathematical modelM Ursino, G FabbriAmerican Journal of Physiology. Heart and Circulatory Physiology|July 19, 2000
Acute cardiovascular response to isocapnic hypoxia. I. A mathematical modelM Ursino, E MagossoBio-Medical Materials and Engineering|January 1, 1992
High frequency pressure propagation in viscoelastic tubes: a new experimental approachM Ursino, E ArtioliMedical & Biological Engineering & Computing|January 1, 2003
Cardiovascular response to dynamic aerobic exercise: a mathematical modelE Magosso, M UrsinoAnnals of Biomedical Engineering|August 15, 2001
Role of tissue hypoxia in cerebrovascular regulation: a mathematical modeling studyM Ursino, E MagossoJournal of Biomechanical Engineering|February 1, 1995
Mathematical modeling of noninvasive blood pressure estimation techniques--Part I: Pressure transmission across the arm tissueM Ursino, C CristalliConference Proceedings : ... Annual International Conference of the IEEE Engineering in Medicine and Biology Society. IEEE Engineering in Medicine and Biology Society. Annual Conference|February 3, 2007
Effects of cardiovascular parameter changes on heart rate variability: analysis by a mathematical model of short-term cardiovascular regulationE Magosso, M UrsinoAnnals of Biomedical Engineering|January 1, 1991
A mathematical model of the relationship between cerebral blood volume and intracranial pressure changes: the generation of plateau wavesM Ursino, P Di GiammarcoJournal of Applied Physiology (Bethesda, Md. : 1985)|April 1, 1997
A simple mathematical model of the interaction between intracranial pressure and cerebral hemodynamicsM Ursino, C A LodiPageof 48