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Statistics of spike trains in conductance-based neural networks: Rigorous results

Published 19 Apr 2011 in math-ph, math.DS, math.MP, physics.bio-ph, and q-bio.NC | (1104.3795v2)

Abstract: We consider a conductance based neural network inspired by the generalized Integrate and Fire model introduced by Rudolph and Destexhe. We show the existence and uniqueness of a unique Gibbs distribution characterizing spike train statistics. The corresponding Gibbs potential is explicitly computed. These results hold in presence of a time-dependent stimulus and apply therefore to non-stationary dynamics.

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