2024
DOI: 10.1609/aaai.v38i8.28645
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Automatic Core-Guided Reformulation via Constraint Explanation and Condition Learning

Kevin Leo,
Grame Gange,
Maria Garcia de la Banda
et al.

Abstract: SAT and propagation solvers often underperform for optimisation models whose objective sums many single-variable terms. MaxSAT solvers avoid this by detecting and exploiting cores: subsets of these terms that cannot collectively take their lower bounds. Previous work has shown manual analysis of cores can help define model reformulations likely to speed up solving for many model instances. This paper presents a method to automate this process. For each selected core the method identifies the instance constrain… Show more

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