Although it is being successfully implemented for exploration of the genome, discovery science has eluded the functional neuroimaging community. The core challenge remains the development of common paradigms for interrogating the myriad functional systems in the brain without the constraints of a priori hypotheses. Resting-state functional MRI (R-fMRI) constitutes a candidate approach capable of addressing this challenge. Imaging the brain during rest reveals large-amplitude spontaneous low-frequency (<0.1 Hz) fluctuations in the fMRI signal that are temporally correlated across functionally related areas. Referred to as functional connectivity, these correlations yield detailed maps of complex neural systems, collectively constituting an i...
Whole brain functional connectomes hold promise for understanding human brain activity across a rang...
Resting-state functional magnetic resonance imaging (RFMRI) enables researchers to monitor fluctuati...
Our brain is a network. It consists of spatially distributed, but functionally linked regions that c...
Although it is being successfully implemented for exploration of the genome, discovery science has e...
Although it is being successfully implemented for exploration of the genome, discovery science has e...
Spontaneous fluctuations in activity in different parts of the brain can be used to study functional...
Resting-state functional magnetic resonance imaging (rfMRI) allows one to study functional connectiv...
Resting-state functional magnetic resonance imaging (rfMRI) allows one to study functional connectiv...
Resting-state functional magnetic resonance imaging (rfMRI) allows one to study functional connectiv...
Spontaneous fluctuations in activity in different parts of the brain can be used to study functional...
Functional connectome of the human brain explores the temporal associations of different brain regio...
Resting-state functional MRI (R-fMRI) has emerged as a promising neuroimaging technique used to iden...
Whole brain functional connectomes hold promise for understanding human brain activity across a rang...
Resting-state functional magnetic resonance imaging (RFMRI) enables researchers to monitor fluctuati...
Our brain is a network. It consists of spatially distributed, but functionally linked regions that c...
Although it is being successfully implemented for exploration of the genome, discovery science has e...
Although it is being successfully implemented for exploration of the genome, discovery science has e...
Spontaneous fluctuations in activity in different parts of the brain can be used to study functional...
Resting-state functional magnetic resonance imaging (rfMRI) allows one to study functional connectiv...
Resting-state functional magnetic resonance imaging (rfMRI) allows one to study functional connectiv...
Resting-state functional magnetic resonance imaging (rfMRI) allows one to study functional connectiv...
Spontaneous fluctuations in activity in different parts of the brain can be used to study functional...
Functional connectome of the human brain explores the temporal associations of different brain regio...
Resting-state functional MRI (R-fMRI) has emerged as a promising neuroimaging technique used to iden...
Whole brain functional connectomes hold promise for understanding human brain activity across a rang...
Resting-state functional magnetic resonance imaging (RFMRI) enables researchers to monitor fluctuati...
Our brain is a network. It consists of spatially distributed, but functionally linked regions that c...