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On Continuous Local BDD-Based Search for Hybrid SAT Solving

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arxiv 2012.07983 v2 pith:H3DZGC3M submitted 2020-12-14 cs.AI cs.ITcs.LGcs.LOmath.ITmath.OC

classification cs.AIcs.ITcs.LGcs.LOmath.ITmath.OC
keywords booleanconstraintssolvingalgorithmbddscontinuousgradsathybrid
verification ladder T0 review T1 audit T2 compute T3 formal
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We explore the potential of continuous local search (CLS) in SAT solving by proposing a novel approach for finding a solution of a hybrid system of Boolean constraints. The algorithm is based on CLS combined with belief propagation on binary decision diagrams (BDDs). Our framework accepts all Boolean constraints that admit compact BDDs, including symmetric Boolean constraints and small-coefficient pseudo-Boolean constraints as interesting families. We propose a novel algorithm for efficiently computing the gradient needed by CLS. We study the capabilities and limitations of our versatile CLS solver, GradSAT, by applying it on many benchmark instances. The experimental results indicate that GradSAT can be a useful addition to the portfolio of existing SAT and MaxSAT solvers for solving Boolean satisfiability and optimization problems.

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