English

Near-Optimal Lower Bounds on Quantifier Depth and Weisfeiler-Leman Refinement Steps

Logic in Computer Science 2016-09-02 v2 Computational Complexity

Abstract

We prove near-optimal trade-offs for quantifier depth versus number of variables in first-order logic by exhibiting pairs of nn-element structures that can be distinguished by a kk-variable first-order sentence but where every such sentence requires quantifier depth at least nΩ(k/logk)n^{\Omega(k/\log k)}. Our trade-offs also apply to first-order counting logic, and by the known connection to the kk-dimensional Weisfeiler--Leman algorithm imply near-optimal lower bounds on the number of refinement iterations. A key component in our proof is the hardness condensation technique recently introduced by [Razborov '16] in the context of proof complexity. We apply this method to reduce the domain size of relational structures while maintaining the minimal quantifier depth to distinguish them in finite variable logics.

Keywords

Cite

@article{arxiv.1608.08704,
  title  = {Near-Optimal Lower Bounds on Quantifier Depth and Weisfeiler-Leman Refinement Steps},
  author = {Christoph Berkholz and Jakob Nordström},
  journal= {arXiv preprint arXiv:1608.08704},
  year   = {2016}
}

Comments

This is the full-length version of a paper with the same title which appeared in Proceedings of the 31st Annual ACM/IEEE Symposium on Logic in Computer Science (LICS '16)

R2 v1 2026-06-22T15:36:03.869Z