Formation of working memory in a spiking neuron network accompanied by astrocytes
Susanna Yu. Gordleeva, Yulia A. Tsybina, Mikhail I. Krivonosov,, Mikhail V. Ivanchenko, Alexey A. Zaikin, Victor B. Kazantsev, Alexander N., Gorban

TL;DR
This paper presents a biologically plausible computational model of working memory using a spiking neuron network interacting with astrocytes, demonstrating multi-item storage and retrieval with high accuracy.
Contribution
It introduces a novel neuron-astrocyte network model that can store and retrieve multiple overlapping information patterns over several seconds.
Findings
Successful multi-item memory storage for several seconds.
High retrieval accuracy with over 90% correlation.
Astrocytes modulate synaptic strengths to facilitate recall.
Abstract
We propose a biologically plausible computational model of working memory (WM) implemented by the spiking neuron network (SNN) interacting with a network of astrocytes. SNN is modelled by the synaptically coupled Izhikevich neurons with a non-specific architecture connection topology. Astrocytes generating calcium signals are connected by local gap junction diffusive couplings and interact with neurons by chemicals diffused in the extracellular space. Calcium elevations occur in response to the increase of concentration of a neurotransmitter released by spiking neurons when a group of them fire coherently. In turn, gliotransmitters are released by activated astrocytes modulating the strengths of synaptic connections in the corresponding neuronal group. Input information is encoded as two-dimensional patterns of short applied current pulses stimulating neurons. The output is taken from…
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Taxonomy
TopicsNeural dynamics and brain function · Advanced Memory and Neural Computing · Neuroscience and Neuropharmacology Research
