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Diffusion on networked systems is a question of time or structure

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  • DELVENNE, Jean-Charles
  • LAMBIOTTE, Renaud
  • ROCHA, Luis E.C.

Abstract

Network science investigates the architecture of complex systems to understand their functional and dynamical properties. Structural patterns such as communities shape diffusive processes on networks. However, these results hold under the strong assumption that networks are static entities where temporal aspects can be neglected. Here we propose a generalized formalism for linear dynamics on complex networks, able to incorporate statistical properties of the timings at which events occur. We show that the diffusion dynamics is affected by the network community structure and by the temporal properties of waiting times between events. We identify the main mechanism—network structure, burstiness or fat tails of waiting times—determining the relaxation times of stochastic processes on temporal networks, in the absence of temporal–structure correlations. We identify situations when fine-scale structure can be discarded from the description of the dynamics or, conversely, when a fully detailed model is required due to temporal heterogeneities.
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Suggested Citation

  • DELVENNE, Jean-Charles & LAMBIOTTE, Renaud & ROCHA, Luis E.C., 2015. "Diffusion on networked systems is a question of time or structure," LIDAM Reprints CORE 2673, Université catholique de Louvain, Center for Operations Research and Econometrics (CORE).
  • Handle: RePEc:cor:louvrp:2673
    Note: In : Nature Communications, 6, 2015, # 7366
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    Cited by:

    1. Shapochkina, I.V. & Rozenbaum, V.M. & Sheu, S.-Y. & Yang, D.-Y. & Lin, S.H. & Trakhtenberg, L.I., 2019. "Relaxation high-temperature ratchets," Physica A: Statistical Mechanics and its Applications, Elsevier, vol. 514(C), pages 71-78.
    2. Peng Bao & Hua-Wei Shen & Junming Huang & Haiqiang Chen, 2018. "Mention effect in information diffusion on a micro-blogging network," PLOS ONE, Public Library of Science, vol. 13(3), pages 1-13, March.
    3. Lee, Sang Hoon & Holme, Petter, 2019. "Navigating temporal networks," Physica A: Statistical Mechanics and its Applications, Elsevier, vol. 513(C), pages 288-296.
    4. Li, Mingwu & Dankowicz, Harry, 2019. "Impact of temporal network structures on the speed of consensus formation in opinion dynamics," Physica A: Statistical Mechanics and its Applications, Elsevier, vol. 523(C), pages 1355-1370.
    5. Medvedev, Alexey & Kertesz, Janos, 2017. "Empirical study of the role of the topology in spreading on communication networks," Physica A: Statistical Mechanics and its Applications, Elsevier, vol. 470(C), pages 12-19.
    6. Nikolaj Horsevad & David Mateo & Robert E. Kooij & Alain Barrat & Roland Bouffanais, 2022. "Transition from simple to complex contagion in collective decision-making," Nature Communications, Nature, vol. 13(1), pages 1-10, December.
    7. Luca Gallo & Lucas Lacasa & Vito Latora & Federico Battiston, 2024. "Higher-order correlations reveal complex memory in temporal hypergraphs," Nature Communications, Nature, vol. 15(1), pages 1-7, December.

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