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Partial Optimality in Cubic Correlation Clustering

Authors :
Stein, David
Di Gregorio, Silvia
Andres, Bjoern
Publication Year :
2023

Abstract

The higher-order correlation clustering problem is an expressive model, and recently, local search heuristics have been proposed for several applications. Certifying optimality, however, is NP-hard and practically hampered already by the complexity of the problem statement. Here, we focus on establishing partial optimality conditions for the special case of complete graphs and cubic objective functions. In addition, we define and implement algorithms for testing these conditions and examine their effect numerically, on two datasets.<br />Comment: 28 pages

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2302.04694
Document Type :
Working Paper