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瞬态网络动力学中的快速和慢速多米诺骨牌效应。

Fast and slow domino regimes in transient network dynamics.

机构信息

Department of Mathematics, University of Exeter, Exeter EX4 4QF, United Kingdom.

EPSRC Centre for Predictive Modelling in Healthcare, University of Exeter, Exeter EX4 4QJ, United Kingdom.

出版信息

Phys Rev E. 2017 Nov;96(5-1):052309. doi: 10.1103/PhysRevE.96.052309. Epub 2017 Nov 8.

Abstract

It is well known that the addition of noise to a multistable dynamical system can induce random transitions from one stable state to another. For low noise, the times between transitions have an exponential tail and Kramers' formula gives an expression for the mean escape time in the asymptotic limit. If a number of multistable systems are coupled into a network structure, a transition at one site may change the transition properties at other sites. We study the case of escape from a "quiescent" attractor to an "active" attractor in which transitions back can be ignored. There are qualitatively different regimes of transition, depending on coupling strength. For small coupling strengths, the transition rates are simply modified but the transitions remain stochastic. For large coupling strengths, transitions happen approximately in synchrony-we call this a "fast domino" regime. There is also an intermediate coupling regime where some transitions happen inexorably but with a delay that may be arbitrarily long-we call this a "slow domino" regime. We characterize these regimes in the low noise limit in terms of bifurcations of the potential landscape of a coupled system. We demonstrate the effect of the coupling on the distribution of timings and (in general) the sequences of escapes of the system.

摘要

众所周知,在多稳态动力系统中加入噪声可以诱导从一个稳定状态到另一个稳定状态的随机跃迁。对于低噪声,跃迁之间的时间具有指数尾部,而克拉默斯公式给出了渐近极限下平均逃逸时间的表达式。如果许多多稳态系统耦合到网络结构中,一个站点的跃迁可能会改变其他站点的跃迁特性。我们研究了从“静止”吸引子到“活跃”吸引子的逃逸情况,其中可以忽略返回的跃迁。根据耦合强度,存在定性不同的跃迁区域。对于小的耦合强度,跃迁速率只是简单地改变,但跃迁仍然是随机的。对于大的耦合强度,跃迁大约在同步发生——我们称之为“快速多米诺骨牌”区。还有一个中间耦合区,其中一些跃迁不可避免地发生,但延迟可能任意长——我们称之为“缓慢多米诺骨牌”区。我们在低噪声极限下根据耦合系统势景观的分岔来描述这些区域。我们展示了耦合对系统定时分布的影响(一般情况下)以及系统的逃逸序列。

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