Starting from a microscopic model for a system of neurons evolving in time which individually follow a stochastic integrate-and-fire type model, we study a mean-field limit of the system. Our model is described by a system of SDEs with discontinuous coefficients for the action potential of each neuron and takes into account the (random) spatial configuration of neurons allowing the interaction to depend on it. In the limit as the number of particles tends to infinity, we obtain a nonlinear Fokker-Planck type PDE in two variables, with derivatives only with respect to one variable and discontinuous coefficients. We also study strong well-posedness of the system of SDEs and prove the existence and uniqueness of a weak measure-valued solution ...
We consider a discrete model in which particles are characterized by two quantities X and Y ; both ...
We consider a discrete model in which particles are characterized by two quantities X and Y ; both ...
We consider a discrete model in which particles are characterized by two quantities X and Y ; both ...
Starting from a microscopic model for a system of neurons evolving in time which individually follow...
Starting from a microscopic model for a system of neurons evolving in time which individually follow...
Starting from a microscopic model for a system of neurons evolving in time which individually follow...
Starting from a microscopic model for a system of neurons evolving in time which individually follow...
Starting from a microscopic model for a system of neurons evolving in time which individually follow...
Starting from a microscopic model for a system of neurons evolving in time which individually follo...
Starting from a microscopic model for a system of neurons evolving in time which individually follow...
Starting from a microscopic model for a system of neurons evolving in time which individually follow...
Starting from a microscopic model for a system of neurons evolving in time which individually follow...
Starting from a microscopic model for a system of neurons evolving in time which individually follow...
Starting from a microscopic model for a system of neurons evolving in time which individually follow...
We consider a discrete model in which particles are characterized by two quantities X and Y ; both ...
We consider a discrete model in which particles are characterized by two quantities X and Y ; both ...
We consider a discrete model in which particles are characterized by two quantities X and Y ; both ...
We consider a discrete model in which particles are characterized by two quantities X and Y ; both ...
Starting from a microscopic model for a system of neurons evolving in time which individually follow...
Starting from a microscopic model for a system of neurons evolving in time which individually follow...
Starting from a microscopic model for a system of neurons evolving in time which individually follow...
Starting from a microscopic model for a system of neurons evolving in time which individually follow...
Starting from a microscopic model for a system of neurons evolving in time which individually follow...
Starting from a microscopic model for a system of neurons evolving in time which individually follo...
Starting from a microscopic model for a system of neurons evolving in time which individually follow...
Starting from a microscopic model for a system of neurons evolving in time which individually follow...
Starting from a microscopic model for a system of neurons evolving in time which individually follow...
Starting from a microscopic model for a system of neurons evolving in time which individually follow...
Starting from a microscopic model for a system of neurons evolving in time which individually follow...
We consider a discrete model in which particles are characterized by two quantities X and Y ; both ...
We consider a discrete model in which particles are characterized by two quantities X and Y ; both ...
We consider a discrete model in which particles are characterized by two quantities X and Y ; both ...
We consider a discrete model in which particles are characterized by two quantities X and Y ; both ...