English

Residue Balancing on Singular Curves

Algebraic Geometry 2026-01-08 v1

Abstract

This paper investigates residue maps and their spanning properties for singular algebraic curves, with particular emphasis on three interconnected themes: the \emph{scheme--theoretic residue span}, the \emph{residue--balancing principle}, and \emph{residue balancing in the presence of arbitrary singularities}. Starting from the theory of dualizing sheaves on nodal curves, we reinterpret canonical and higher--order differentials as meromorphic objects on the normalization whose local principal parts are constrained by explicit residue conditions. A key result is the scheme--theoretic residue span theorem, which asserts that % for nodal curves of geometric genus gg with δ\delta nodes, when δg\delta \ge g the residue functionals at the nodes span H0(C,ωC)H^0(C,\omega_C)^\vee, so canonical differentials are completely determined by their residue data. This provides a concrete, linear description of H0(C,ωC)H^0(C,\omega_C) and yields powerful applications to deformation theory, Severi varieties, and moduli problems. \vspace{0.1cm} We then develop the residue--balancing principle, showing that global residue conditions on each irreducible component of a singular curve are equivalent to local balancing conditions at the singular points. This equivalence clarifies the local--to--global structure of dualizing sheaves and extends naturally to kk--differentials. Finally, we address the case of arbitrary singularities, where nodes no longer suffice to describe local geometry. Using normalization and the conductor ideal, we formulate a refined balancing principle that replaces simple residue cancellation by higher--order and conductor--level constraints. Together, these results provide a unified framework for understanding how local singular behavior governs global differentials and their deformations.

Keywords

Cite

@article{arxiv.2601.03816,
  title  = {Residue Balancing on Singular Curves},
  author = {Mounir Nisse},
  journal= {arXiv preprint arXiv:2601.03816},
  year   = {2026}
}

Comments

64 pages

R2 v1 2026-07-01T08:54:09.476Z