Rounding of abrupt phase transitions in brain networks
arXiv:1407.7392 · doi:10.1088/1742-5468/2015/01/P01003
Abstract
The observation of critical-like behavior in cortical networks represents a major step forward in elucidating how the brain manages information. Understanding the origin and functionality of critical-like dynamics, as well as their robustness, is a major challenge in contemporary neuroscience. Here, we present an extensive numerical study of a family of simple dynamic models, which describe activity propagation in brain networks through the integration of different neighboring spiking potentials, mimicking basic neural interactions. The requirement of signal integration may lead to discontinuous phase transitions in networks that are well described by the mean field approximation, thus preventing the emergence of critical points in such systems. Here we show that criticality in the brain is instead robust, as a consequence of the hierarchical organization of the higher layers of cortical networks, which signals a departure from the mean-field paradigm. We show that, in finite-dimensional hierarchical networks, discontinuous phase transitions exhibit a rounding phenomenon and turn continuous for values of the topological dimension , due to the presence of structural or topological disorder. Our results may prove significant in explaining the observation of traits of critical behavior in large-scale measurements of brain activity.
10 pages
References in corpus (11)
- Emergent complex neural dynamics
- Thresholds for epidemic spreading in networks
- Hierarchical modularity in human brain functional networks
- Dynamical synapses causing self-organized criticality in neural networks
- Rare region effects at classical, quantum, and non-equilibrium phase transitions
- Simulation of Robustness against Lesions of Cortical Networks
- Griffiths phases on complex networks
- Infinite-randomness critical point in the two-dimensional disordered contact process
- Critical behavior and Griffiths effects in the disordered contact process
- Criticality of spreading dynamics in hierarchical cluster networks without inhibition
- Signal integration enhances the dynamic range in neuronal systems