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Published on: August 21, 2019
Robustness measurement of multiplex networks based on graph spectrum
Mingze Qi1, Peng Chen1, Jun Wu2
1College of Science, National University of Defense Technology, Changsha, Hunan 410073, People's Republic of China.
This study introduces new robustness measures for multiplex networks, which represent complex systems with multiple layers. Findings show a strong link between network robustness and natural connectivity, aiding in the design of coupled systems.
Area of Science:
- Complex Systems Science
- Network Science
- Graph Theory
Background:
- Networks model relationships in complex systems using nodes and links.
- Multilayer networks represent interactions between multiple interconnected systems.
- Multiplex networks, a type of multilayer network, feature replaceable or dependent relationships across layers.
Purpose of the Study:
- To develop and evaluate robustness measures for various multiplex network types.
- To generalize natural connectivity from graph spectra for multiplex network analysis.
- To correlate network topology with system robustness.
Main Methods:
- Generalizing natural connectivity calculations from graph spectra.
- Analyzing robustness using spectral graph theory.
- Conducting experiments on both model and real-world multiplex networks.
Main Results:
- A close correlation was observed between multiplex network robustness and the natural connectivity of aggregated networks or layer intersections.
- The proposed indicators effectively measure or estimate multiplex network robustness based on individual layer topology.
- The study validates findings on both synthetic and empirical multiplex network data.
Conclusions:
- Natural connectivity serves as a reliable indicator for assessing the robustness of multiplex networks.
- The findings provide insights for designing and protecting interconnected complex systems.
- Understanding layer topology is crucial for predicting overall network resilience.
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