A Kronecker algorithm for locally closed sets over a perfect field
Abstract
We develop a probabilistic algorithm of Kronecker type for computing a Kronecker representation of a zero-dimensional linear section of an algebraic variety defined over a perfect field . The variety is the Zariski closure of the set of common zeros of multivariate polynomials outside a prescribed hypersurface . We assume that satisfy natural geometric conditions, such as regularity and radicality, in the local ring . Our approach combines homotopic deformation techniques with symbolic Newton-Hensel lifting and elimination. We discuss the concept of lifting curves as intermediate geometric objects that enable efficient computation. The complexity of the algorithm is expressed in terms of the degrees and arithmetic size of the input and achieves soft-quadratic complexity in these parameters. We provide detailed complexity analyses for arbitrary perfect fields, as well as for two important cases in computer algebra: finite fields and the field of rational numbers. For each case, we obtain sharp bounds on the size of the base field or required primes.
Cite
@article{arxiv.2512.14888,
title = {A Kronecker algorithm for locally closed sets over a perfect field},
author = {Nardo Giménez and Joos Heintz and Guillermo Matera and Luis Miguel Pardo and Mariana Pérez and Melina Privitelli},
journal= {arXiv preprint arXiv:2512.14888},
year = {2025}
}
Comments
To appear in a Special Issue of Appl. Algebra Engrg. Comm. Comput. dedicated to the memory of Joos Heintz