English

Linear pencils encoded in the Newton polygon

Algebraic Geometry 2016-04-05 v4 Combinatorics

Abstract

Let CC be an algebraic curve defined by a sufficiently generic bivariate Laurent polynomial with given Newton polygon Δ\Delta. It is classical that the geometric genus of CC equals the number of lattice points in the interior of Δ\Delta. In this paper we give similar combinatorial interpretations for the gonality, the Clifford index and the Clifford dimension, by removing a technical assumption from a recent result of Kawaguchi. More generally, the method shows that apart from certain well-understood exceptions, every base-point free pencil whose degree equals or slightly exceeds the gonality is 'combinatorial', in the sense that it corresponds to projecting CC along a lattice direction. We then give an interpretation for the scrollar invariants associated to a combinatorial pencil, and show how one can tell whether the pencil is complete or not. Among the applications, we find that every smooth projective curve admits at most one Weierstrass semi-group of embedding dimension 22, and that if a non-hyperelliptic smooth projective curve CC of genus g2g \geq 2 can be embedded in the nnth Hirzebruch surface Hn\mathcal{H}_n, then nn is actually an invariant of CC.

Keywords

Cite

@article{arxiv.1402.4651,
  title  = {Linear pencils encoded in the Newton polygon},
  author = {Wouter Castryck and Filip Cools},
  journal= {arXiv preprint arXiv:1402.4651},
  year   = {2016}
}

Comments

This covers and extends sections 1 to 3.4 of our previously posted article "On the intrinsicness of the Newton polygon" (arXiv:1304.4997), which will eventually become obsolete. arXiv admin note: text overlap with arXiv:1304.4997

R2 v1 2026-06-22T03:11:29.481Z