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Title: Impact on the topology of power-law networks from anisotropic and localized access to information
Authors: Cao, Z 
He, Z
Johnson, NF
Issue Date: Oct-2018
Source: Physical review E : covering statistical, nonlinear, biological, and soft matter physics, Oct. 2018, v. 98, no. 4, 042307
Abstract: Preferential attachment is a popular candidate mechanism for generating power-law networks. However, incoming nodes require global information about existing nodes' connectivities before connecting, whereas such information access within real-world networks may be only anisotropic and localized. Here we investigate how anisotropic and localized information access affect the resulting network topology. We find that anisotropy impacts the power-law exponent significantly but has only a weak influence on the clustering coefficient. By contrast, we find that locality influences the clustering coefficient significantly but has only weak influence on the power-law exponent. We show that this generalized network-generation mechanism is capable of generating networks with a broad range of power-law exponents and clustering coefficients. Our findings contribute to the debate about why so many real-world networks have degree distributions that crudely resemble power laws, even if this resemblance doesn't survive strict statistical testing procedures.
Publisher: American Physical Society
Journal: Physical review E : covering statistical, nonlinear, biological, and soft matter physics 
ISSN: 2470-0045
EISSN: 2470-0053
DOI: 10.1103/PhysRevE.98.042307
Rights: ©2018 American Physical Society
The following publication Cao, Z., He, Z., & Johnson, N. F. (2018). Impact on the topology of power-law networks from anisotropic and localized access to information. Physical Review E, 98(4), 042307 is available at https://doi.org/10.1103/PhysRevE.98.042307.
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