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Finite Size Effects in Networks of Coupled Neurons
Nefeli-Dimitra Tsigkri-DeSmedt1,2, Panagiotis Vlamos3, Astero Provata4
1Institute of Nanoscience and Nanotechnology, National Center for Scientific Research "Demokritos", Athens, Greece. n.tsigkri@inn.demokritos.gr.
Abstract:
We use extensive computer simulations to study synchronization phenomena in networks of biological neurons. Each individual neuron is modeled using the leaky integrate-and-fire (LIF) scheme, while many neurons are coupled nonlocally in a network. In this system chimera states develop, which are complex states consisting of coexisting synchronous and asynchronous network areas. We study the influence of the network size on the properties and the form of chimera states. We show that for constant coupling strength, the number of the synchronous/asynchronous domains depends quantitatively on the coupling ratio. This dependence allows to extract synchronization properties in large ensembles of neurons after extrapolating from simulations of small networks. Since computer simulations of even small neuron networks are highly demanding in memory and CPU time, this property is particularly important in view of the large number of neurons involved in any cognitive function. In total, the number of neurons in the human brain is of the order of 1010, and each of them is connected with an average of 103 other neurons.
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