Stochastic Biomathematical Models: with Applications to Neuronal Modeling

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Stochastic biomathematical models are becoming increasingly important as new light is shed on the role of noise in living systems. In certain biological systems, stochastic effects may even enhance a signal, thus providing a biological motivation for the noise observed in living systems. Recent advances in stochastic analysis and increasing computing power facilitate the analysis of more biophysically realistic models, and this book provides researchers in computational neuroscience and stochastic systems with an overview of recent developments. Key concepts are developed in chapters written by experts in their respective fields. Topics include: one-dimensional homogeneous diffusions and their boundary behavior, large deviation theory and its application in stochastic neurobiological models, a review of mathematical methods for stochastic neuronal integrate-and-fire models, stochastic partial differential equation models in neurobiology, and stochastic modeling of spreading cortical depression.

Author(s): Susanne Ditlevsen, Adeline Samson (auth.), Mostafa Bachar, Jerry Batzel, Susanne Ditlevsen (eds.)
Series: Lecture Notes in Mathematics 2058
Edition: 1
Publisher: Springer-Verlag Berlin Heidelberg
Year: 2013

Language: English
Pages: 206
Tags: Probability Theory and Stochastic Processes; Mathematical Modeling and Industrial Mathematics; Statistics for Life Sciences, Medicine, Health Sciences; Neurobiology

Front Matter....Pages i-xvi
Front Matter....Pages 1-1
Introduction to Stochastic Models in Biology....Pages 3-35
One-Dimensional Homogeneous Diffusions....Pages 37-55
A Brief Introduction to Large Deviations Theory....Pages 57-72
Some Numerical Methods for Rare Events Simulation and Analysis....Pages 73-95
Front Matter....Pages 97-97
Stochastic Integrate and Fire Models: A Review on Mathematical Methods and Their Applications....Pages 99-148
Stochastic Partial Differential Equations in Neurobiology: Linear and Nonlinear Models for Spiking Neurons....Pages 149-173
Deterministic and Stochastic FitzHugh–Nagumo Systems....Pages 175-186
Stochastic Modeling of Spreading Cortical Depression....Pages 187-200
Back Matter....Pages 201-206