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Conference paper

Modeling Temporal Evolution and Multiscale Structure in Networks

From

Department of Applied Mathematics and Computer Science, Technical University of Denmark1

Cognitive Systems, Department of Applied Mathematics and Computer Science, Technical University of Denmark2

Many real-world networks exhibit both temporal evolution and multiscale structure. We propose a model for temporally correlated multifurcating hierarchies in complex networks which jointly capture both effects. We use the Gibbs fragmentation tree as prior over multifurcating trees and a change-point model to account for the temporal evolution of each vertex.

We demonstrate that our model is able to infer time-varying multiscale structure in synthetic as well as three real world time-evolving complex networks. Our modeling of the temporal evolution of hierarchies brings new insights into the changing roles and position of entities and possibilities for better understanding these dynamic complex systems.

Language: English
Year: 2013
Pages: 960-968
Proceedings: 30th International Conference on Machine Learning (ICML 2013)International Conference on Machine Learning
Series: Jmlr: Workshop and Conference Proceedings
ISSN: 19387228
Types: Conference paper
ORCIDs: Herlau, Tue , Mørup, Morten and Schmidt, Mikkel Nørgaard

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