AbstractResting state networks (RSNs) are of fundamental importance in human systems neuroscience with evidence suggesting that they are integral to healthy brain function and perturbed in pathology. Despite rapid progress in this area, the temporal dynamics governing the functional connectivities that underlie RSN structure remain poorly understood. Here, we present a framework to help further our understanding of RSN dynamics. We describe a methodology which exploits the direct nature and high temporal resolution of magnetoencephalography (MEG). This technique, which builds on previous work, extends from solving fundamental confounds in MEG (source leakage) to multivariate modelling of transient connectivity. The resulting processing pipe...
To provide an effective substrate for cognitive processes, functional brain networks should be able ...
AbstractThe characterisation of dynamic electrophysiological brain networks, which form and dissolve...
The characterisation of dynamic electrophysiological brain networks, which form and dissolve in orde...
Resting state networks (RSNs) are of fundamental importance in human systems neuroscience with evide...
AbstractResting state networks (RSNs) are of fundamental importance in human systems neuroscience wi...
Resting state networks (RSNs) are of fundamental importance in human systems neuroscience with evide...
Resting state networks (RSNs) are of fundamental importance in human systems neuroscience with evide...
To provide an effective substrate for cognitive processes, functional brain networks should be able ...
To provide an effective substrate for cognitive processes, functional brain networks should be able ...
To provide an effective substrate for cognitive processes, functional brain networks should be able ...
International audienceThe human brain is a dynamic modular network that can be decomposed into a set...
International audienceThe human brain is a dynamic modular network that can be decomposed into a set...
Efficient neuronal communication between brain regions through oscillatory synchronization at certai...
The human brain is a hierarchical complex network − always active and evolvingdynamically. Its...
Dynamic resting state functional connectivity (RSFC) characterizes fluctuations that occur over time...
To provide an effective substrate for cognitive processes, functional brain networks should be able ...
AbstractThe characterisation of dynamic electrophysiological brain networks, which form and dissolve...
The characterisation of dynamic electrophysiological brain networks, which form and dissolve in orde...
Resting state networks (RSNs) are of fundamental importance in human systems neuroscience with evide...
AbstractResting state networks (RSNs) are of fundamental importance in human systems neuroscience wi...
Resting state networks (RSNs) are of fundamental importance in human systems neuroscience with evide...
Resting state networks (RSNs) are of fundamental importance in human systems neuroscience with evide...
To provide an effective substrate for cognitive processes, functional brain networks should be able ...
To provide an effective substrate for cognitive processes, functional brain networks should be able ...
To provide an effective substrate for cognitive processes, functional brain networks should be able ...
International audienceThe human brain is a dynamic modular network that can be decomposed into a set...
International audienceThe human brain is a dynamic modular network that can be decomposed into a set...
Efficient neuronal communication between brain regions through oscillatory synchronization at certai...
The human brain is a hierarchical complex network − always active and evolvingdynamically. Its...
Dynamic resting state functional connectivity (RSFC) characterizes fluctuations that occur over time...
To provide an effective substrate for cognitive processes, functional brain networks should be able ...
AbstractThe characterisation of dynamic electrophysiological brain networks, which form and dissolve...
The characterisation of dynamic electrophysiological brain networks, which form and dissolve in orde...