English

Additive Sparsification of CSPs

Data Structures and Algorithms 2024-01-04 v2 Discrete Mathematics

Abstract

Multiplicative cut sparsifiers, introduced by Bencz\'ur and Karger [STOC'96], have proved extremely influential and found various applications. Precise characterisations were established for sparsifiability of graphs with other 2-variable predicates on Boolean domains by Filtser and Krauthgamer [SIDMA'17] and non-Boolean domains by Butti and \v{Z}ivn\'y [SIDMA'20]. Bansal, Svensson and Trevisan [FOCS'19] introduced a weaker notion of sparsification termed "additive sparsification", which does not require weights on the edges of the graph. In particular, Bansal et al. designed algorithms for additive sparsifiers for cuts in graphs and hypergraphs. As our main result, we establish that all Boolean Constraint Satisfaction Problems (CSPs) admit an additive sparsifier; that is, for every Boolean predicate P:{0,1}k{0,1}P:\{0,1\}^k\to\{0,1\} of a fixed arity kk, we show that CSP(PP) admits an additive sparsifier. Under our newly introduced notion of all-but-one sparsification for non-Boolean predicates, we show that CSP(PP) admits an additive sparsifier for any predicate P:Dk{0,1}P:D^k\to\{0,1\} of a fixed arity kk on an arbitrary finite domain DD.

Cite

@article{arxiv.2106.14757,
  title  = {Additive Sparsification of CSPs},
  author = {Eden Pelleg and Stanislav Živný},
  journal= {arXiv preprint arXiv:2106.14757},
  year   = {2024}
}

Comments

Full version of an ESA'21 paper

R2 v1 2026-06-24T03:40:39.777Z