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Explicit size distributions of failure cascades redefine systemic risk on finite networks

机译:失效级联的显式大小分布在有限网络上重新定义系统风险

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摘要

How big is the risk that a few initial failures of nodes in a network amplify to large cascades that span a substantial share of all nodes? Predicting the final cascade size is critical to ensure the functioning of a system as a whole. Yet, this task is hampered by uncertain and missing information. In infinitely large networks, the average cascade size can often be estimated by approaches building on local tree and mean field approximations. Yet, as we demonstrate, in finite networks, this average does not need to be a likely outcome. Instead, we find broad and even bimodal cascade size distributions. This phenomenon persists for system sizes up to 107 and different cascade models, i.e. it is relevant for most real systems. To show this, we derive explicit closed-form solutions for the full probability distribution of the final cascade size. We focus on two topological limit cases, the complete network representing a dense network with a very narrow degree distribution, and the star network representing a sparse network with a inhomogeneous degree distribution. Those topologies are of great interest, as they either minimize or maximize the average cascade size and are common motifs in many real world networks.
机译:网络中的节点的一些初始故障放大到跨越所有节点的很大一部分的大型级联的风险有多大?预测最终的级联大小对于确保整个系统的功能至关重要。然而,不确定和缺少信息阻碍了这项任务。在无限大的网络中,平均级联大小通常可以通过建立在局部树上的方法和平均场近似来估计。但是,正如我们证明的那样,在有限网络中,该平均值不一定是可能的结果。相反,我们发现了广泛甚至双峰的级联大小分布。对于最大10 7 的系统大小和不同的级联模型,这种现象仍然存在,即,它与大多数实际系统有关。为了说明这一点,我们导出了最终级联大小的全部概率分布的显式闭式解。我们关注两种拓扑极限情况,完整的网络表示度分布非常窄的密集网络,而星形网络表示度分布不均匀的稀疏网络。这些拓扑非常有趣,因为它们最小化或最大化了平均级联大小,并且是许多现实世界网络中的常见主题。

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