Biology presents many examples of planar distribution and structural networks having dense sets of closed loops. An archetype of this form of network organization is the vasculature of dicotyledonous leaves, which showcases a hierarchically-nested architecture containing closed loops at many different levels. Although a number of approaches have been proposed to measure aspects of the structure of such networks, a robust metric to quantify their hierarchical organization is still lacking. We present an algorithmic framework, the hierarchical loop decomposition, that allows mapping loopy networks to binary trees, preserving in the connectivity of the trees the architecture of the original graph. We apply this framework to investigate compute...
Although large social and information networks are often thought of as having hierarchical or tree-l...
The brain's structural and functional systems, protein-protein interaction, and gene networks are ex...
Large-scale white matter pathways crisscrossing the cortex create a complex pattern of connectivity ...
Biology presents many examples of planar distribution and structural networks having dense sets of c...
We use graph theory in conjunction with automated vessel data extraction software to identify and qu...
Natural and man-made transport webs are frequently dominated by dense sets of nested cycles. The arc...
Natural and man-made transport webs are frequently dominated by dense sets of nested cycles. The arc...
The structure of hierarchical networks in biological and physical systems has long been characterize...
There have been numerous attempts to derive general models for the structure and function of resourc...
Distribution networks—from vasculature to urban transportation pathways—are spatially embedded netwo...
A recent publication provides the network graph for a neocortical microcircuit comprising 8 million ...
We describe a statistical method for characterizing the topological properties of radial networks ba...
Dendrites form predominantly binary trees that are exquisitely embedded in the networks of the brain...
<div><p>Large-scale white matter pathways crisscrossing the cortex create a complex pattern of conne...
Complex networks are a useful tool for the understanding of complex systems. One of the emerging pro...
Although large social and information networks are often thought of as having hierarchical or tree-l...
The brain's structural and functional systems, protein-protein interaction, and gene networks are ex...
Large-scale white matter pathways crisscrossing the cortex create a complex pattern of connectivity ...
Biology presents many examples of planar distribution and structural networks having dense sets of c...
We use graph theory in conjunction with automated vessel data extraction software to identify and qu...
Natural and man-made transport webs are frequently dominated by dense sets of nested cycles. The arc...
Natural and man-made transport webs are frequently dominated by dense sets of nested cycles. The arc...
The structure of hierarchical networks in biological and physical systems has long been characterize...
There have been numerous attempts to derive general models for the structure and function of resourc...
Distribution networks—from vasculature to urban transportation pathways—are spatially embedded netwo...
A recent publication provides the network graph for a neocortical microcircuit comprising 8 million ...
We describe a statistical method for characterizing the topological properties of radial networks ba...
Dendrites form predominantly binary trees that are exquisitely embedded in the networks of the brain...
<div><p>Large-scale white matter pathways crisscrossing the cortex create a complex pattern of conne...
Complex networks are a useful tool for the understanding of complex systems. One of the emerging pro...
Although large social and information networks are often thought of as having hierarchical or tree-l...
The brain's structural and functional systems, protein-protein interaction, and gene networks are ex...
Large-scale white matter pathways crisscrossing the cortex create a complex pattern of connectivity ...