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arXiv · 2607.20595

Log-concavity of elementary coefficients for low-rank abelian Hessenberg graphs, with a counterexample in general

Abstract

Let $X_{G_h}(\mathbf{x};q)=\sum_{μ\vdash n}c_μ(q)e_μ(\mathbf{x})$ be the chromatic quasisymmetric function of the natural unit interval graph attached to a Hessenberg function $h$. We establish an infinite class, valid in all orders, for which every nonzero polynomial $c_μ(q)$ has a nonnegative, log-concave coefficient sequence with interval support. Namely, this holds whenever $h$ is abelian and its complement-Ferrers partition $λ$ satisfies $\min\{λ_1,\ell(λ)\}\leq 3$; equivalently, the diagram has at most three rows or at most three columns. Cubic interpolation reduces the rank-three case to a uniform theorem for a difference of two products of four $q$-integers, proved by positive decomposition, interval methods, and finite-window smoothing. The argument also yields explicit formulas for every supported elementary coefficient in complement-Ferrers rank at most three. We also include a connected 13-vertex natural unit interval graph for which one elementary coefficient is positive, palindromic, and unimodal but not log-concave, thereby recording the failure of the unrestricted conjecture. Thus low complement-Ferrers rank gives a substantial positive regime even though coefficientwise $e$-log-concavity fails in general.

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BibTeXRIS

Boris Kafidov. 2026-08-01. Log-concavity of elementary coefficients for low-rank abelian Hessenberg graphs, with a counterexample in general. https://arxiv.org/abs/2607.20595

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