AbstractBackgroundUnderstanding the complex hierarchical topology of functional brain networks is a key aspect of functional connectivity research. Such topics are obscured by the widespread use of sparse binary network models which are fundamentally different to the complete weighted networks derived from functional connectivity.New methodsWe introduce two techniques to probe the hierarchical complexity of topologies. Firstly, a new metric to measure hierarchical complexity; secondly, a Weighted Complex Hierarchy (WCH) model. To thoroughly evaluate our techniques, we generalise sparse binary network archetypes to weighted forms and explore the main topological features of brain networks – integration, regularity and modularity – using curv...
This paper represents a contribution to the study of the brain functional connectivity from the pers...
This paper represents a contribution to the study of the brain functional connectivity from the pers...
Functional connectivity in human brain can be represented as a network using electroencephalography ...
AbstractBackgroundUnderstanding the complex hierarchical topology of functional brain networks is a ...
Background Understanding the complex hierarchical topology of functional brain networks is a key asp...
This doctoral thesis outlines several methodological advances in network science aimed towards unco...
Research into binary network analysis of brain function faces a methodological challenge in selecti...
Research into binary network analysis of brain function faces a methodological challenge in selectin...
Research into binary network analysis of brain function faces a methodological challenge in selectin...
BACKGROUND: Networks or graphs play an important role in the biological sciences. Protein interactio...
The human brain has been studied at multiple scales, from neurons, circuits, areas with well-defined...
The human brain has been studied at multiple scales, from neurons, circuits, areas with well-defined...
One of the central challenges facing modern neuroscience is to explain the ability of the nervous sy...
The idea that complex systems have a hierarchical modular organization originated in the early 1960s...
The large-scale structural ingredients of the brain and neural connectomes have been identified in r...
This paper represents a contribution to the study of the brain functional connectivity from the pers...
This paper represents a contribution to the study of the brain functional connectivity from the pers...
Functional connectivity in human brain can be represented as a network using electroencephalography ...
AbstractBackgroundUnderstanding the complex hierarchical topology of functional brain networks is a ...
Background Understanding the complex hierarchical topology of functional brain networks is a key asp...
This doctoral thesis outlines several methodological advances in network science aimed towards unco...
Research into binary network analysis of brain function faces a methodological challenge in selecti...
Research into binary network analysis of brain function faces a methodological challenge in selectin...
Research into binary network analysis of brain function faces a methodological challenge in selectin...
BACKGROUND: Networks or graphs play an important role in the biological sciences. Protein interactio...
The human brain has been studied at multiple scales, from neurons, circuits, areas with well-defined...
The human brain has been studied at multiple scales, from neurons, circuits, areas with well-defined...
One of the central challenges facing modern neuroscience is to explain the ability of the nervous sy...
The idea that complex systems have a hierarchical modular organization originated in the early 1960s...
The large-scale structural ingredients of the brain and neural connectomes have been identified in r...
This paper represents a contribution to the study of the brain functional connectivity from the pers...
This paper represents a contribution to the study of the brain functional connectivity from the pers...
Functional connectivity in human brain can be represented as a network using electroencephalography ...