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Multi-Community Detection in Signed Graphs Using Quantum Hardware

Authors :
Zahedinejad, Ehsan
Crawford, Daniel
Adolphs, Clemens
Oberoi, Jaspreet S.
Publication Year :
2019

Abstract

Signed graphs serve as a primary tool for modelling social networks. They can represent relationships between individuals (i.e., nodes) with the use of signed edges. Finding communities in a signed graph is of great importance in many areas, for example, targeted advertisement. We propose an algorithm to detect multiple communities in a signed graph. Our method reduces the multi-community detection problem to a quadratic binary unconstrained optimization problem and uses state-of-the-art quantum or classical optimizers to find an optimal assignment of each individual to a specific community.

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.1901.04873
Document Type :
Working Paper