English

How Gibbs distributions may naturally arise from synaptic adaptation mechanisms. A model-based argumentation

Adaptation and Self-Organizing Systems 2015-05-13 v3 Dynamical Systems Biological Physics

Abstract

This paper addresses two questions in the context of neuronal networks dynamics, using methods from dynamical systems theory and statistical physics: (i) How to characterize the statistical properties of sequences of action potentials ("spike trains") produced by neuronal networks ? and; (ii) what are the effects of synaptic plasticity on these statistics ? We introduce a framework in which spike trains are associated to a coding of membrane potential trajectories, and actually, constitute a symbolic coding in important explicit examples (the so-called gIF models). On this basis, we use the thermodynamic formalism from ergodic theory to show how Gibbs distributions are natural probability measures to describe the statistics of spike trains, given the empirical averages of prescribed quantities. As a second result, we show that Gibbs distributions naturally arise when considering "slow" synaptic plasticity rules where the characteristic time for synapse adaptation is quite longer than the characteristic time for neurons dynamics.

Keywords

Cite

@article{arxiv.0812.3899,
  title  = {How Gibbs distributions may naturally arise from synaptic adaptation mechanisms. A model-based argumentation},
  author = {B. Cessac and H. Rostro and J. C. Vasquez and T. Viéville},
  journal= {arXiv preprint arXiv:0812.3899},
  year   = {2015}
}

Comments

39 pages, 3 figures

R2 v1 2026-06-21T11:54:19.488Z