The brain’s structural and functional systems, protein-protein interaction, and gene networks are examples of biological systems that share some features of complex networks, such as highly connected nodes, modularity, and small-world topology. Recent studies indicate that some pathologies present topological network alterations relative to norms seen in the general population. Therefore, methods to discriminate the processes that generate the different classes of networks (e.g., normal and disease) might be crucial for the diagnosis, prognosis, and treatment of the disease. It is known that several topological properties of a network (graph) can be described by the distribution of the spectrum of its adjacency matrix. Moreover, large netwo...
The brain is a highly complex system. Most of such complexity stems from the intermingled connection...
The brain is a highly complex system. Most of such complexity stems from the intermingled connection...
Complex biological systems are often modeled as networks of interacting units. Networks of biochemic...
The brain's structural and functional systems, protein-protein interaction, and gene networks are ex...
The brain's structural and functional systems, protein-protein interaction, and gene networks are ex...
The brain's structural and functional systems, protein-protein interaction, and gene networks are ex...
Since the discovery of small-world and scale-free networks the study of complex systems from a netwo...
Since the discovery of small-world and scale-free networks the study of complex systems from a netwo...
AbstractThe application of graph analysis methods to the topological organization of brain connectiv...
Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)Conselho Nacional de Desenvolvimento Ci...
Abstract Background Recent genomic and bioinformatic advances have motivated the development of nume...
Recent genomic and bioinformatic advances have motivated the development of numerous random network ...
The brain is a highly complex system. Most of such complexity stems from the intermingled connection...
The brain is a highly complex system. Most of such complexity stems from the intermingled connection...
The brain is a highly complex system. Most of such complexity stems from the intermingled connection...
The brain is a highly complex system. Most of such complexity stems from the intermingled connection...
The brain is a highly complex system. Most of such complexity stems from the intermingled connection...
Complex biological systems are often modeled as networks of interacting units. Networks of biochemic...
The brain's structural and functional systems, protein-protein interaction, and gene networks are ex...
The brain's structural and functional systems, protein-protein interaction, and gene networks are ex...
The brain's structural and functional systems, protein-protein interaction, and gene networks are ex...
Since the discovery of small-world and scale-free networks the study of complex systems from a netwo...
Since the discovery of small-world and scale-free networks the study of complex systems from a netwo...
AbstractThe application of graph analysis methods to the topological organization of brain connectiv...
Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)Conselho Nacional de Desenvolvimento Ci...
Abstract Background Recent genomic and bioinformatic advances have motivated the development of nume...
Recent genomic and bioinformatic advances have motivated the development of numerous random network ...
The brain is a highly complex system. Most of such complexity stems from the intermingled connection...
The brain is a highly complex system. Most of such complexity stems from the intermingled connection...
The brain is a highly complex system. Most of such complexity stems from the intermingled connection...
The brain is a highly complex system. Most of such complexity stems from the intermingled connection...
The brain is a highly complex system. Most of such complexity stems from the intermingled connection...
Complex biological systems are often modeled as networks of interacting units. Networks of biochemic...