具有高阶相互作用的网络的结构和动力学

IF 23.9 1区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY
S. Boccaletti , P. De Lellis , C.I. del Genio , K. Alfaro-Bittner , R. Criado , S. Jalan , M. Romance
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引用次数: 28

摘要

在一个复杂系统的涌现动态中,所有的美、丰富和和谐在很大程度上取决于其基本组成部分相互作用的特定方式。过去25年见证了网络科学多学科领域的诞生和发展,其中物理学、生物学、社会科学和工程学中的各种分布式系统被建模为耦合单元的网络,试图揭示其观察到的功能下的机制。然而,这种表示有一个基本的限制:网络只捕获成对的交互,而许多现实世界系统的功能不仅涉及二元连接,而且是节点组级别的集体行动的结果。例如,在生态系统中,三个或更多的物种可能会竞争食物或领土,类似的多组分相互作用出现在功能和结构脑网络、蛋白质相互作用网络、语义网络、多作者科学合作、离线和在线社会网络、基因调控网络以及由于多个同时接触而传播共识或传染病。这种多组分的相互作用只能通过超图或简单复合体来掌握,这两种方法最近确实有大量的应用。在本报告中,我们涵盖了过去几年关于这一主题的大量文献,并将重点放在超图和简单复合体的结构和动力学上。由于数据集分辨率的提高和数据分析技术的最新进展,这些确实变得越来越相关,这些技术(同时且明确地)表明,这种结构在现实世界分布式系统的复杂组织和功能中起着关键作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The structure and dynamics of networks with higher order interactions

All beauty, richness and harmony in the emergent dynamics of a complex system largely depend on the specific way in which its elementary components interact. The last twenty-five years have seen the birth and development of the multidisciplinary field of Network Science, wherein a variety of distributed systems in physics, biology, social sciences and engineering have been modeled as networks of coupled units, in the attempt to unveil the mechanisms underneath their observed functionality. There is, however, a fundamental limit to such a representation: networks capture only pairwise interactions, whereas the functioning of many real-world systems not only involves dyadic connections, but rather is the outcome of collective actions at the level of groups of nodes. For instance, in ecological systems, three or more species may compete for food or territory, and similar multi-component interactions appear in functional and structural brain networks, protein interaction networks, semantic networks, multi-authors scientific collaborations, offline and online social networks, gene regulatory networks and spreading of consensus or contagious diseases due to multiple, simultaneous, contacts. Such multi-component interactions can only be grasped through either hypergraphs or simplicial complexes, which indeed have recently found a huge number of applications. In this report, we cover the extensive literature of the past years on this subject, and we focus on the structure and dynamics of hypergraphs and simplicial complexes. These are indeed becoming increasingly relevant, thanks to the enhanced resolution of data sets and the recent advances in data analysis techniques, which (concurrently and definitely) have shown that such structures play a pivotal role in the complex organization and functioning of real-world distributed systems.

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来源期刊
Physics Reports
Physics Reports 物理-物理:综合
CiteScore
56.10
自引率
0.70%
发文量
102
审稿时长
9.1 weeks
期刊介绍: Physics Reports keeps the active physicist up-to-date on developments in a wide range of topics by publishing timely reviews which are more extensive than just literature surveys but normally less than a full monograph. Each report deals with one specific subject and is generally published in a separate volume. These reviews are specialist in nature but contain enough introductory material to make the main points intelligible to a non-specialist. The reader will not only be able to distinguish important developments and trends in physics but will also find a sufficient number of references to the original literature.
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