The characterisation of dynamic electrophysiological brain networks, which form and dissolve in order to support ongoing cognitive function, is one of the most important goals in neuroscience. Here, we introduce a method for measuring such networks in the human brain using magnetoencephalography (MEG). Previous network analyses look for brain regions that share a common temporal profile of activity. Here distinctly, we exploit the high spatio-temporal resolution of MEG to measure the temporal evolution of connectivity between pairs of parcellated brain regions. We then use an ICA based procedure to identify networks of connections whose temporal dynamics covary. We validate our method using MEG data recorded during a finger movement task, i...
Owing to their millisecond-scale temporal resolution, magnetoencephalography (MEG) and electroenceph...
Interactions between functionally specialized brain regions are crucial for normal brain function. M...
Owing to their millisecond-scale temporal resolution, magnetoencephalography (MEG) and electroenceph...
AbstractThe characterisation of dynamic electrophysiological brain networks, which form and dissolve...
The characterisation of dynamic electrophysiological brain networks, which form and dissolve in orde...
The characterisation of dynamic electrophysiological brain networks, which form and dissolve in orde...
AbstractThe characterisation of dynamic electrophysiological brain networks, which form and dissolve...
The characterisation of dynamic electrophysiological brain networks, which form and dissolve in orde...
The characterisation of dynamic electrophysiological brain networks, which form and dissolve in orde...
Efficient neuronal communication between brain regions through oscillatory synchronization at certai...
In recent years, one of the most important findings in systems neuroscience has been the identificat...
For several years it has been argued that neural synchronisation is crucial for cognition. The idea ...
For several years it has been argued that neural synchronisation is crucial for cognition. The idea ...
Fluctuations in functional interactions between brain regions typically occur at the millisecond tim...
AbstractResting state networks (RSNs) are of fundamental importance in human systems neuroscience wi...
Owing to their millisecond-scale temporal resolution, magnetoencephalography (MEG) and electroenceph...
Interactions between functionally specialized brain regions are crucial for normal brain function. M...
Owing to their millisecond-scale temporal resolution, magnetoencephalography (MEG) and electroenceph...
AbstractThe characterisation of dynamic electrophysiological brain networks, which form and dissolve...
The characterisation of dynamic electrophysiological brain networks, which form and dissolve in orde...
The characterisation of dynamic electrophysiological brain networks, which form and dissolve in orde...
AbstractThe characterisation of dynamic electrophysiological brain networks, which form and dissolve...
The characterisation of dynamic electrophysiological brain networks, which form and dissolve in orde...
The characterisation of dynamic electrophysiological brain networks, which form and dissolve in orde...
Efficient neuronal communication between brain regions through oscillatory synchronization at certai...
In recent years, one of the most important findings in systems neuroscience has been the identificat...
For several years it has been argued that neural synchronisation is crucial for cognition. The idea ...
For several years it has been argued that neural synchronisation is crucial for cognition. The idea ...
Fluctuations in functional interactions between brain regions typically occur at the millisecond tim...
AbstractResting state networks (RSNs) are of fundamental importance in human systems neuroscience wi...
Owing to their millisecond-scale temporal resolution, magnetoencephalography (MEG) and electroenceph...
Interactions between functionally specialized brain regions are crucial for normal brain function. M...
Owing to their millisecond-scale temporal resolution, magnetoencephalography (MEG) and electroenceph...