Logarithmic Geometry and Geometric Class Field Theory

Fuente: arXiv
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Main Author: Slipper, Aaron
Format: Preprint
Published: 2025
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author Slipper, Aaron
author_facet Slipper, Aaron
contents In this paper, we provide an upgrade of Deligne's geometric class field theory for tamely ramified Galois groups using logarithmic geometry. In particular, we define a framed logarithmic Picard space, and show that a logarithmic compactification of the classical tamely ramified Div-to-Pic map has, for sufficiently large degree, log simply connected fibers given by loagrithmically compactified vector spaces. This provides a canonical bijection between local systems on the curve with divisorial log structure and multiplicative local systems on the framed logarithmic Picard (a logarithmic version of the Hecke eigensheaf correspondence of Geometric Langlands for GL_1. We use this to re-derive tamely ramified global Artin reciprocity for function fields, and show that logarithmic geometry allows for a geometric interpretation of local-to-global compatibility at all places (in addition to the unramified places).
format Preprint
id arxiv_https___arxiv_org_abs_2508_08648
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Logarithmic Geometry and Geometric Class Field Theory
Slipper, Aaron
Algebraic Geometry
Number Theory
14-XX, 14A21, 11-XX, 11G45, 14D24
In this paper, we provide an upgrade of Deligne's geometric class field theory for tamely ramified Galois groups using logarithmic geometry. In particular, we define a framed logarithmic Picard space, and show that a logarithmic compactification of the classical tamely ramified Div-to-Pic map has, for sufficiently large degree, log simply connected fibers given by loagrithmically compactified vector spaces. This provides a canonical bijection between local systems on the curve with divisorial log structure and multiplicative local systems on the framed logarithmic Picard (a logarithmic version of the Hecke eigensheaf correspondence of Geometric Langlands for GL_1. We use this to re-derive tamely ramified global Artin reciprocity for function fields, and show that logarithmic geometry allows for a geometric interpretation of local-to-global compatibility at all places (in addition to the unramified places).
title Logarithmic Geometry and Geometric Class Field Theory
topic Algebraic Geometry
Number Theory
14-XX, 14A21, 11-XX, 11G45, 14D24
url https://arxiv.org/abs/2508.08648