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Dirac-type condition for Hamilton-generated graphs

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arxiv 2503.15950 v1 pith:HRRYZ3N4 submitted 2025-03-20 math.CO

classification math.CO
keywords degreemathcalminimumconditiongraphhamilton-generatedcyclesevery
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abstract

The cycle space $\mathcal{C}(G)$ of a graph $G$ is defined as the linear space spanned by all cycles in $G$. For an integer $k\ge 3$, let $\mathcal{C}_k (G)$ denote the subspace of $\mathcal{C}(G)$ generated by the cycles of length exactly $k$. A graph $G$ on $n$ vertices is called Hamilton-generated if $\mathcal{C}_n (G) = \mathcal{C}(G)$, meaning every cycle in $G$ is a symmetric difference of some Hamilton cycles of $G$. %A necessary condition for this property is that $n$ must be odd. Heinig (European J. Combin., 2014) showed that for any $\sigma >0$ and sufficiently large odd $n$, every $n$-vertex graph with minimum degree $(1+ \sigma)n/2$ is Hamilton-generated. He further posed the question that whether the minimum degree requirement could be lowered to the Dirac threshold $n/2$. Recent progress by Christoph, Nenadov, and Petrova~(arXiv:2402.01447) reduced the minimum degree condition to $n/2 + C$ for some large constant $C$. In this paper, we resolve Heinig's problem completely by proving that for sufficiently large odd $n$, every Hamilton-connected graph $G$ on $n$ vertices with minimum degree at least $(n-1)/2$ is Hamilton-generated. Moreover, this result is tight for the minimum degree and the Hamilton-connected condition. The proof relies on the parity-switcher technique introduced by Christoph, et al in their recent work, as well as a classification lemma that strengthens a previous result by Krivelevich, Lee, and Sudakov~(Trans. Amer. Math. Soc., 2014).

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. On graphs whose cycle space is spanned by their Hamilton cycles

    math.CO 2026-06 unverdicted novelty 7.0 of 10

    Under strengthened Chvátal-Erdős, McDiarmid-Yolov and dominating-set conditions with odd n, the cycle space equals the Hamilton-cycle subspace.

  2. The Hamilton cycle space of random regular graphs and randomly perturbed graphs

    math.CO 2025-07 conditional novelty 7.0 of 10

    Hamilton cycles span the full cycle space asymptotically almost surely in random regular graphs of sufficiently large constant degree, and in randomly perturbed dense graphs.

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