High-order synchronization in identical neurons with asymmetric pulse coupling
Abhay, Gaurav Dar

TL;DR
This paper investigates high-order $p/q$ synchronization in identical neurons with asymmetric pulse coupling, revealing complex bifurcation structures, multistability, and a novel analytical approach to determine spike sequence stability.
Contribution
It introduces an analytical event-driven map method to analyze $p/q$ frequency locking in asymmetric coupled neurons, uncovering detailed bifurcation structures and multistability.
Findings
Identification of $p/q$ locking regions with internal bifurcation structures
Discovery of multistability within and across $p/q$ regions
Development of an analytical method for stability analysis of spike sequences
Abstract
The phenomenon of high-order () 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 cycles of one oscillator there are 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 and inverse time constant . We thoroughly investigate the asymmetric coupling-induced frequency locking structure in parameter space through simulations and analysis. Simulations display quasiperiodicity, devil…
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Taxonomy
TopicsNonlinear Dynamics and Pattern Formation · stochastic dynamics and bifurcation · Photoreceptor and optogenetics research
