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Hierarchical effects facilitate spreading processes on synthetic and empirical multilayer networks

机译:分层效果有助于综合和经验多层网络传播过程

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In this paper we consider the effects of corporate hierarchies on innovation spread across multilayer networks, modeled by an elaborated SIR framework. We show that the addition of management layers can significantly improve spreading processes on both random geometric graphs and empirical corporate networks. Additionally, we show that utilizing a more centralized working relationship network rather than a strict administrative network further increases overall innovation reach. In fact, this more centralized structure in conjunction with management layers is essential to both reaching a plurality of nodes and creating a stable adopted community in the long time horizon. Further, we show that the selection of seed nodes affects the final stability of the adopted community, and while the most influential nodes often produce the highest peak adoption, this is not always the case. In some circumstances, seeding nodes near but not in the highest positions in the graph produces larger peak adoption and more stable long-time adoption.
机译:在本文中,我们考虑了企业层次结构对多层网络的创新的影响,由阐述的先生框架建模。我们表明,管理层的增加可以显着改善随机几何图和经验公司网络的扩展过程。此外,我们表明,利用更集中的工作关系网络而不是严格的行政网络进一步提高整体创新范围。实际上,这种更加集中的结构与管理层结合到达多个节点并在长时间地平线中创建稳定的采用社区。此外,我们表明,种子节点的选择会影响所采用的社区的最终稳定性,而最具影响力的节点通常会产生最高峰的采用,但情况并非如此。在某些情况下,邻近图的播种节点,而不是图中最高位置,产生更大的峰采用和更稳定的长期采用。

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