English

$L^p$-form of the KNRS conjecture

Combinatorics 2026-06-29 v1

Abstract

The Kohayakawa--Nagle--R\"odl--Schacht conjecture predicts that locally dense graphs contain, asymptotically, at least as many homomorphic copies of any fixed graph as the random graph of the same edge density. We prove that every graph with at least one edge satisfies a natural LpL^p relaxation of this conjecture in the graphon setting. More precisely, let FF be a graph with m>0m>0 edges, and let nn be the number of non-isolated vertices of FF. If p(n2)/m, p\ge \binom {n}{2}/m, then for every ρ\rho-locally dense graphon WW, t(F,Wp)ρpm. t(F,W^{\circ p})\ge \rho^{pm}. Equivalently, if WF(x)=ijE(F)W(xi,xj), W_F(\mathbf x)=\prod_{ij\in E(F)}W(x_i,x_j), then WFLpρe(F). \|W_F\|_{L^p}\ge \rho^{e(F)}. The proof is based on a H\"older uniformization over vertex relabellings, in the spirit of Conlon--Lee. We also prove a more general comparison principle with edge-transitive KNRS supergraphs, yielding sharper exponents whenever FF embeds into an edge-transitive KNRS graph. Finally, positive-semidefinite methods give theta-subdivision results: Sidorenko-good graphs are closed under arbitrary uniform theta-subdivisions; the non-uniform theta theorem of Im--Li--Liu admits a Sidorenko-good lift, under the same divisibility assumptions, after removing the parity restriction; and uniform theta-subdivisions of KNRS graphs are regular-KNRS.

Cite

@article{arxiv.2606.30010,
  title  = {$L^p$-form of the KNRS conjecture},
  author = {Yuqi Zhao},
  journal= {arXiv preprint arXiv:2606.30010},
  year   = {2026}
}