English

Sub-Hermitian Geometry and the Quantitative Newlander-Nirenberg Theorem

Complex Variables 2020-04-13 v5 Analysis of PDEs Classical Analysis and ODEs Differential Geometry

Abstract

Given a finite collection of C1C^1 complex vector fields on a C2C^2 manifold MM such that they and their complex conjugates span the complexified tangent space at every point, the classical Newlander-Nirenberg theorem gives conditions on the vector fields so that there is a complex structure on MM with respect to which the vector fields are T0,1T^{0,1}. In this paper, we give intrinsic, diffeomorphic invariant, necessary and sufficient conditions on the vector fields so that they have a desired level of regularity with respect to this complex structure (i.e., smooth, real analytic, or have Zygmund regularity of some finite order). By addressing this in a quantitative way we obtain a holomorphic analog of the quantitative theory of sub-Riemannian geometry initiated by Nagel, Stein, and Wainger. We call this sub-Hermitian geometry. Moreover, we proceed more generally and obtain similar results for manifolds which have an associated formally integrable elliptic structure. This allows us to introduce a setting which generalizes both the real and complex theories.

Keywords

Cite

@article{arxiv.1810.11540,
  title  = {Sub-Hermitian Geometry and the Quantitative Newlander-Nirenberg Theorem},
  author = {Brian Street},
  journal= {arXiv preprint arXiv:1810.11540},
  year   = {2020}
}

Comments

v5: 62 pages, final version, to appear in Adv. Math

R2 v1 2026-06-23T04:54:14.636Z