复杂网络中的爆炸现象

IF 35 1区 物理与天体物理 Q1 PHYSICS, CONDENSED MATTER
R. D’Souza, J. G'omez-Gardenes, J. Nagler, A. Arenas
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引用次数: 126

摘要

大规模连接和同步的出现对许多复杂的社会技术网络的结构、功能和故障至关重要。因此,人们对分析大规模连接和全局同步的相变非常感兴趣,包括如何增强或延迟开始。传统上,这些现象被研究为二阶相变,在临界阈值下,阶参数快速但连续地增加。2009年,在网络增长过程中发现了一个极其突然的转变,即链路竞争添加,试图延迟渗透。这种对“爆炸渗流”的观察最终被揭示为热力学极限的连续转变,但具有非常非典型的有限尺寸标度,它开始了对爆炸现象及其后果的大量研究。许多相关的模型现在被证明产生了不连续的渗流跃迁,甚至混合跃迁。爆炸渗流实现了许多其他特征,如多个巨大组件、模块化结构、离散尺度不变性和非自平均,这些特征与许多真实现象中发现的特性有关,如爆炸流行病、电击穿和分子生命的出现。爆炸同步模型为突变的动力学提供了一个分析框架,并揭示了自然频率分布和网络结构之间的相互作用,其应用范围从癫痫发作到麻醉苏醒。在这里,我们回顾了关于网络系统中爆炸现象的大量文献,综合了模型之间的基本联系,并考察了应用领域。我们试图根据潜在机制对爆炸现象进行分类,并为未来的研究提供连贯的概述和视角,以解决许多尚未解决的重要问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Explosive phenomena in complex networks
The emergence of large-scale connectivity and synchronization are crucial to the structure, function and failure of many complex socio-technical networks. Thus, there is great interest in analyzing phase transitions to large-scale connectivity and to global synchronization, including how to enhance or delay the onset. These phenomena are traditionally studied as second-order phase transitions where, at the critical threshold, the order parameter increases rapidly but continuously. In 2009, an extremely abrupt transition was found for a network growth process where links compete for addition in an attempt to delay percolation. This observation of ‘explosive percolation’ was ultimately revealed to be a continuous transition in the thermodynamic limit, yet with very atypical finite-size scaling, and it started a surge of work on explosive phenomena and their consequences. Many related models are now shown to yield discontinuous percolation transitions and even hybrid transitions. Explosive percolation enables many other features such as multiple giant components, modular structures, discrete scale invariance and non-self-averaging, relating to properties found in many real phenomena such as explosive epidemics, electric breakdowns and the emergence of molecular life. Models of explosive synchronization provide an analytic framework for the dynamics of abrupt transitions and reveal the interplay between the distribution in natural frequencies and the network structure, with applications ranging from epileptic seizures to waking from anesthesia. Here we review the vast literature on explosive phenomena in networked systems and synthesize the fundamental connections between models and survey the application areas. We attempt to classify explosive phenomena based on underlying mechanisms and to provide a coherent overview and perspective for future research to address the many vital questions that remained unanswered.
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来源期刊
Advances in Physics
Advances in Physics 物理-物理:凝聚态物理
CiteScore
67.60
自引率
0.00%
发文量
1
期刊介绍: Advances in Physics publishes authoritative critical reviews by experts on topics of interest and importance to condensed matter physicists. It is intended for motivated readers with a basic knowledge of the journal’s field and aims to draw out the salient points of a reviewed subject from the perspective of the author. The journal''s scope includes condensed matter physics and statistical mechanics: broadly defined to include the overlap with quantum information, cold atoms, soft matter physics and biophysics. Readership: Physicists, materials scientists and physical chemists in universities, industry and research institutes.
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