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Rare events statistics of random walks on networks: localisation and other dynamical phase transitions

机译:网络上随机游走的稀有事件统计:本地化和其他动态相变

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Rare event statistics for random walks on complex networks are investigated using the large deviation formalism. Within this formalism, rare events are realised as typical events in a suitably deformed path-ensemble, and their statistics can be studied in terms of spectral properties of a deformed Markov transition matrix. We observe two different types of phase transition in such systems: (i) rare events which are singled out for sufficiently large values of the deformation parameter may correspond to localised modes of the deformed transition matrix; (ii) 'mode-switching transitions' may occur as the deformation parameter is varied. Details depend on the nature of the observable for which the rare event statistics is studied, as well as on the underlying graph ensemble. In the present paper we report results on rare events statistics for path averages of random walks in Erdos-Renyi and scale free networks. Large deviation rate functions and localisation properties are studied numerically. For observables of the type considered here, we also derive an analytical approximation for the Legendre transform of the large deviation rate function, which is valid in the large connectivity limit. It is found to agree well with simulations.
机译:使用大偏差形式主义研究了复杂网络上随机游走的稀有事件统计信息。在这种形式主义中,罕见事件被实现为在适当变形的路径集合中的典型事件,并且可以根据变形的马尔可夫转移矩阵的光谱特性来研究其统计信息。我们在这种系统中观察到两种不同类型的相变:(i)为足够大的变形参数值而选出的稀有事件可能对应于变形转换矩阵的局部模式; (ii)随着变形参数的变化,可能会发生“模式切换过渡”。细节取决于要研究稀有事件统计信息的可观察对象的性质,以及底层图形集合。在本文中,我们报告了鄂尔多斯-仁义和无标度网络中随机游走路径平均值的罕见事件统计结果。数值研究大偏差率函数和定位特性。对于此处考虑的类型的可观察对象,我们还导出了大偏差率函数的勒让德变换的解析近似值,该近似值在大连通性范围内有效。发现与模拟非常吻合。

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