• Mi UCrea
    Ver ítem 
    •   UCrea
    • UCrea Investigación
    • Instituto de Física de Cantabria (IFCA) - centro mixto UC-CSIC
    • D52 Artículos
    • Ver ítem
    •   UCrea
    • UCrea Investigación
    • Instituto de Física de Cantabria (IFCA) - centro mixto UC-CSIC
    • D52 Artículos
    • Ver ítem
    JavaScript is disabled for your browser. Some features of this site may not work without it.

    Dynamics of a large system of spiking neurons with synaptic delay

    Ver/Abrir
    DynamicsLargeSystem.pdf (2.466Mb)
    Identificadores
    URI: http://hdl.handle.net/10902/15670
    DOI: 10.1103/PhysRevE.98.042214
    ISSN: 1539-3755
    ISSN: 1550-2376
    ISSN: 2470-0045
    ISSN: 2470-0053
    Compartir
    RefworksMendeleyBibtexBase
    Estadísticas
    Ver Estadísticas
    Google Scholar
    Registro completo
    Mostrar el registro completo DC
    Autoría
    Devalle, F.; Montbrió, E.; Pazó Bueno, Diego SantiagoAutoridad Unican
    Fecha
    2018-10
    Derechos
    © American Physical Society
    Publicado en
    Physical Review E, 2018, 98(4), 042214
    Editorial
    American Physical Society
    Enlace a la publicación
    https://doi.org/10.1103/PhysRevE.98.042214
    Resumen/Abstract
    We analyze a large system of heterogeneous quadratic integrate-and-fire (QIF) neurons with time delayed, all-to-all synaptic coupling. The model is exactly reduced to a system of firing rate equations that is exploited to investigate the existence, stability, and bifurcations of fully synchronous, partially synchronous, and incoherent states. In conjunction with this analysis we perform extensive numerical simulations of the original network of QIF neurons, and determine the relation between the macroscopic and microscopic states for partially synchronous states. The results are summarized in two phase diagrams, for homogeneous and heterogeneous populations, which are obtained analytically to a large extent. For excitatory coupling, the phase diagram is remarkably similar to that of the Kuramoto model with time delays, although here the stability boundaries extend to regions in parameter space where the neurons are not self-sustained oscillators. In contrast, the structure of the boundaries for inhibitory coupling is different, and already for homogeneous networks unveils the presence of various partially synchronized states not present in the Kuramoto model: Collective chaos, quasiperiodic partial synchronization (QPS), and a novel state which we call modulated-QPS (M-QPS). In the presence of heterogeneity partially synchronized states reminiscent to collective chaos, QPS and M-QPS persist. In addition, the presence of heterogeneity greatly amplifies the differences between the incoherence stability boundaries of excitation and inhibition. Finally, we compare our results with those of a traditional (Wilson Cowan-type) firing rate model with time delays. The oscillatory instabilities of the traditional firing rate model qualitatively agree with our results only for the case of inhibitory coupling with strong heterogeneity.
    Colecciones a las que pertenece
    • D52 Artículos [1339]

    UNIVERSIDAD DE CANTABRIA

    Repositorio realizado por la Biblioteca Universitaria utilizando DSpace software
    Contacto | Sugerencias
    Metadatos sujetos a:licencia de Creative Commons Reconocimiento 4.0 España
     

     

    Listar

    Todo UCreaComunidades y coleccionesFecha de publicaciónAutoresTítulosTemasEsta colecciónFecha de publicaciónAutoresTítulosTemas

    Mi cuenta

    AccederRegistrar

    Estadísticas

    Ver Estadísticas
    Sobre UCrea
    Qué es UcreaGuía de autoarchivoArchivar tesisAcceso abiertoGuía de derechos de autorPolítica institucional
    Piensa en abierto
    Piensa en abierto
    Compartir

    UNIVERSIDAD DE CANTABRIA

    Repositorio realizado por la Biblioteca Universitaria utilizando DSpace software
    Contacto | Sugerencias
    Metadatos sujetos a:licencia de Creative Commons Reconocimiento 4.0 España