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Characterizing cycle structure in complex networks

delete2021-12-20
delete82
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OA
AI
T
Tianlong Fan
L
Linyuan Lü *
D
Dinghua Shi *
周
周涛 (Tao Zhou) *
DOI:10.1038/s42005-021-00781-3delete
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摘要

摘要

En 中文
A cycle is the simplest structure that brings redundant paths in network connectivity and feedback effects in network dynamics. An in-depth understanding of which cycles are important and what role they play on network structure and dynamics, however, is still lacking. In this paper, we define the cycle number matrix, a matrix enclosing the information about cycles in a network, and the cycle ratio, an index that quantifies node importance. Experiments on real networks suggest that cycle ratio contains rich information in addition to well-known benchmark indices. For example, node rankings by cycle ratio are largely different from rankings by degree, H-index, and coreness, which are very similar indices. Numerical experiments on identifying vital nodes for network connectivity and synchronization and maximizing the early reach of spreading show that the cycle ratio performs overall better than other benchmarks. Finally, we highlight a significant difference between the distribution of shorter cycles in real and model networks. We believe our in-depth analyses on cycle structure may yield insights, metrics, models, and algorithms for network science. Characterising the structure of real-world complex networks is of crucial importance to understand the emerging dynamics taking place on top of them. In this work the authors investigate the cycle organization of synthetic and real systems, and use such information to define a centrality measure that is more informative than traditional indexes to the end of understanding network dismantling, synchronization, and spreading processes
Keyword:
VITAL NODES
TOPOLOGY
IDENTIFICATION
DYNAMICS
INTERNET

期刊

Communications Physics 封面图
Communications Physics
IF:
5.8
论文数:
2.8K
被引数:
9.2K

机构

B
beijing computational science research center (csrc)
学者数:
859
论文数: 722
被引数: 2
S
shanghai university
学者数:
3.9W
论文数: 2.7W
被引数: 52
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