getSameCommunityProbability(W,nRep)
P = getSameCommunityProbability(W,nRep)
Given an undirected (weighted or binary) connection matrix
with positive and negative weights, the algorithm computes
the community structure nRep times and for each area pair,
computes the a posteriori probability that the 2 areas belong
to the same community. In fact, the community detection algorithm
makes use of heuristics, thus community partition may vary. For this
reason, it is suggested to use nRep > 50
Note: This code builds upon the function 'modularity_louvain_und_sign'
(using the Gómez, Jensen & Arena method implemented in the function),
which is part of the Brain Connectivity Toolbox
(https://sites.google.com/site/bctnet/).
INPUT
W : undirected (weighted or binary) connection matrix
with positive and negative weights
nRep : num. of repetitions of the community detection
algorithm
OUTPUT
P : Probability Matrix (probability that area i & j
were assigned to the same community)
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- Bettinardi, R. G., Tort-Colet, N., Ruiz-Mejias, M., Sanchez-Vives, M. V., & Deco, G. (2015).
“Gradual emergence of spontaneous correlated brain activity during fading of general anesthesia in rats:
Evidences from fMRI and local field potentials.” Neuroimage, 114, 185-198.
DOI: https://doi.org/10.1016/j.neuroimage.2015.03.037
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Cite As
Ruggero G. Bettinardi (2025). getSameCommunityProbability(W,nRep) (https://www.mathworks.com/matlabcentral/fileexchange/62996-getsamecommunityprobability-w-nrep), MATLAB Central File Exchange. Retrieved .
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Version | Published | Release Notes | |
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1.0.0.0 |