Cliques in Squares of Graphs with Maximum Average Degree less than 4
Daniel W. Cranston, Gexin Yu
Abstract
Open-access reader
Daniel W. Cranston, Gexin Yu
Abstract
Open-access reader
Hocquard, Kim, and Pierron constructed, for every even integer $D\ge 2$, a 2-degenerate graph $G_D$ with maximum degree $D$ such that $ω(G_D^2)=\frac52D$. We prove for (a) all 2-degenerate graphs $G$ and (b) all graphs $G$ with $\mbox{mad}(G)<4$, upper bounds on the clique number $ω(G^2)$ of $G^2$ that match the lower bound given by this construction, up to small additive constants. We show that if $G$ is 2-degenerate with maximum degree $D$, then $ω(G^2)\le \frac52D+72$ (with $ω(G^2)\le \frac52D+60$ when $D$ is sufficiently large). And if $G$ has $\mbox{mad}(G)<4$ and maximum degree $D$, then $ω(G^2)\le \frac52D+532$. Thus, the construction of Hocquard et al. is essentially best possible. Our proofs introduce a "token passing" technique to derive crucial information about non-adjacencies in $G$ of vertices that are adjacent in $G^2$. This is a powerful technique for working with such graphs that has not previously appeared in the literature.
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Hocquard, Kim, and Pierron constructed, for every even integer $D\ge 2$, a 2-degenerate graph $G_D$ with maximum degree $D$ such that $ω(G_D^2)=\frac52D$. We prove for (a) all 2-degenerate graphs $G$ and (b) all graphs $G$ with $\mbox{mad}(G)<4$, upper bounds on the clique number $ω(G^2)$ of $G^2$ that match the lower bound given by this construction, up to small additive constants. We show that if $G$ is 2-degenerate with maximum degree $D$, then $ω(G^2)\le \frac52D+72$ (with $ω(G^2)\le \frac52D+60$ when $D$ is sufficiently large). And if $G$ has $\mbox{mad}(G)<4$ and maximum degree $D$, then $ω(G^2)\le \frac52D+532$. Thus, the construction of Hocquard et al. is essentially best possible. Our proofs introduce a "token passing" technique to derive crucial information about non-adjacencies in $G$ of vertices that are adjacent in $G^2$. This is a powerful technique for working with such graphs that has not previously appeared in the literature.
Key concepts: Combinatorics, Degree (music), Omega, Mathematics, Graph, Degenerate energy levels, Upper and lower bounds, Discrete mathematics