Collective behavior of heterogeneous neural networks
classification
🧬 q-bio.NC
cond-mat.dis-nn
keywords
behaviorcollectivemodelasynchronouscharacterizedcouplingdistributiondynamics
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We investigate a network of integrate-and-fire neurons characterized by a distribution of spiking frequencies. Upon increasing the coupling strength, the model exhibits a transition from an asynchronous regime to a nontrivial collective behavior. At variance with the Kuramoto model, (i) the macroscopic dynamics is irregular even in the thermodynamic limit, and (ii) the microscopic (single-neuron) evolution is linearly stable.
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