Skip to main content
Journal cover image

Network size, structure, and pathogen transmission: A simulation study comparing different community detection algorithms

Publication ,  Journal Article
Sumner, KM; McCabe, CM; Nunn, CL
Published in: Behaviour
January 1, 2018

Social substructure can influence pathogen transmission. Modularity measures the degree of social contact within versus between "communities" in a network, with increasing modularity expected to reduce transmission opportunities. We investigated how social substructure scales with network size and disease transmission. Using small-scale primate social networks, we applied seven community detection algorithms to calculate modularity and subgroup cohesion, defined as individuals' interactions within subgroups proportional to the network. We found larger networks were more modular with higher subgroup cohesion, but the association's strength varied by community detection algorithm and substructure measure. These findings highlight the importance of choosing an appropriate community detection algorithm for the question of interest, and if not possible, using multiple algorithms. Disease transmission simulations revealed higher modularity and subgroup cohesion resulted in fewer infections, confirming that social substructure has epidemiological consequences. Increased subdivision in larger networks could reflect constrained time budgets or evolved defences against disease risk.

Duke Scholars

Altmetric Attention Stats
Dimensions Citation Stats

Published In

Behaviour

DOI

EISSN

1568-539X

ISSN

0005-7959

Publication Date

January 1, 2018

Volume

155

Issue

7-9

Start / End Page

639 / 670

Related Subject Headings

  • Behavioral Science & Comparative Psychology
  • 3109 Zoology
  • 3104 Evolutionary biology
  • 3103 Ecology
  • 0608 Zoology
  • 0603 Evolutionary Biology
  • 0602 Ecology
 

Citation

APA
Chicago
ICMJE
MLA
NLM
Sumner, K. M., McCabe, C. M., & Nunn, C. L. (2018). Network size, structure, and pathogen transmission: A simulation study comparing different community detection algorithms. Behaviour, 155(7–9), 639–670. https://doi.org/10.1163/1568539X-00003508
Sumner, K. M., C. M. McCabe, and C. L. Nunn. “Network size, structure, and pathogen transmission: A simulation study comparing different community detection algorithms.” Behaviour 155, no. 7–9 (January 1, 2018): 639–70. https://doi.org/10.1163/1568539X-00003508.
Sumner, K. M., et al. “Network size, structure, and pathogen transmission: A simulation study comparing different community detection algorithms.” Behaviour, vol. 155, no. 7–9, Jan. 2018, pp. 639–70. Scopus, doi:10.1163/1568539X-00003508.
Journal cover image

Published In

Behaviour

DOI

EISSN

1568-539X

ISSN

0005-7959

Publication Date

January 1, 2018

Volume

155

Issue

7-9

Start / End Page

639 / 670

Related Subject Headings

  • Behavioral Science & Comparative Psychology
  • 3109 Zoology
  • 3104 Evolutionary biology
  • 3103 Ecology
  • 0608 Zoology
  • 0603 Evolutionary Biology
  • 0602 Ecology