English

High-order synchronization in identical neurons with asymmetric pulse coupling

Adaptation and Self-Organizing Systems 2025-01-08 v1

Abstract

The phenomenon of high-order (p/qp/q) synchronization, induced by \textit{two different} frequencies in the system, is well-known and studied extensively in forced oscillators including neurons and to a lesser extent in coupled oscillators. Their frequencies are locked such that for every pp cycles of one oscillator there are qq cycles of the other. We demonstrate this phenomenon in a pair of coupled neurons having \textit{identical} frequencies but \textit{asymmetric} coupling. Specifically, we focus on an excitatory(E)-inhibitory(I) neuron pair where such an asymmetry is naturally present even with equal reciprocal synaptic strengths (g)(g) and inverse time constant (α)(\alpha). We thoroughly investigate the asymmetric coupling-induced p/qp/q frequency locking structure in (g,α)(g,\alpha) parameter space through simulations and analysis. Simulations display quasiperiodicity, devil staircase, a novel Farey arrangement of spike sequences, and presence of reducible and irreducible p/qp/q regions. We introduce an analytical method, based on event-driven maps, to determine the existence and stability of any spike sequence of the two neurons in a p/qp/q frequency-locked state. Specifically, this method successfully deals with non-smooth bifurcations and we could utilize it to obtain solutions for the case of identical E-I neuron pair under arbitrary coupling strength. In contrast to the so-called Arnold tongues, the p/qp/q regions obtained here are not structure-less. Instead they have their own internal bifurcation structure with varying levels of complexity. Intra-sequence and inter-sequence multistability, involving spike sequences of same p/qp/q state, are found. Additionally, multistability also arises by overlap of p/qp/q with p/qp'/q'. The boundaries of both reducible and irreducible p/qp/q regions are defined by saddle node and non-smooth grazing bifurcations of various types.

Keywords

Cite

@article{arxiv.2501.03557,
  title  = {High-order synchronization in identical neurons with asymmetric pulse coupling},
  author = {Abhay and Gaurav Dar},
  journal= {arXiv preprint arXiv:2501.03557},
  year   = {2025}
}

Comments

27 pages , 18 figures

R2 v1 2026-06-28T20:58:24.447Z