The separating variety for matrix invariants

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Main Author: Elmer, Jonathan
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Published: 2025
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author Elmer, Jonathan
author_facet Elmer, Jonathan
contents Let $G$ be a linear algebraic group defined over an algebraically closed field $k$, and let $V$ be a vector space on which $G$ acts linearly. The separating variety $\mathcal{S}_{G,V}$ is the subvariety of $V^2$ consisting of pairs of points indistinguishable by invariant polynomials in $k[V]^G$. Its geometry places restrictions on the existence of small separating sets, i.e. sets of invariants which distinguish the same points as the full algebra of invariants. The purpose of this article is to study the separating variety in the important special case where $G=\mathrm{GL}_p(\mathbb{C})$ acts on the set $V$ of $n$-tuples of $p \times p$ matrices by simultaneous conjugation. We define a purely combinatorial poset, $\mathcal{P}_{p,n}$, whose maximal elements are in 1-1 correspondence with the irreducible components of $\mathcal{S}_{G,V}$. We show that $\mathcal{S}_{G,V}$ is a variety of dimension $(n+1)p^2-1$, and determine its subdimension for all $n$ and $p$. In particular we show the subdimension is $(n+1)p^2-p$ if $n \geq 3$, or $n \geq 2$ and $p \geq 4$. In the case $n \geq 3$, we give a formula for the number of components of given codimension in $\mathcal{S}_{G,V}$. We give explicit decompositions of $\mathcal{S}_{G,V}$ for all $n$ where $p=2,3$ or $4$. Our results in particular show that when $n\geq 2$ and $p\geq 4$, or $n\geq 3$ and $p=3$, $\mathbb{C}[V]^G$ does not contain a polynomial or hypersurface separating set. It was proven in arXiv:2202.05717 that the same is true if $n \geq 4$ and $p=2$. The author made a conjecture in arXiv:2211.17088 generalising the Skronowski-Weyman theorem for representations of quivers. The results of this paper prove that conjecture in two important special cases: for the quiver with one vertex and an arbitrary number, $n$, of loops, and for the quiver with two vertices and $n$ arrows between them.
format Preprint
id arxiv_https___arxiv_org_abs_2508_13865
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle The separating variety for matrix invariants
Elmer, Jonathan
Representation Theory
Commutative Algebra
Combinatorics
16G20, 13A50, 05E40, 14R20
Let $G$ be a linear algebraic group defined over an algebraically closed field $k$, and let $V$ be a vector space on which $G$ acts linearly. The separating variety $\mathcal{S}_{G,V}$ is the subvariety of $V^2$ consisting of pairs of points indistinguishable by invariant polynomials in $k[V]^G$. Its geometry places restrictions on the existence of small separating sets, i.e. sets of invariants which distinguish the same points as the full algebra of invariants. The purpose of this article is to study the separating variety in the important special case where $G=\mathrm{GL}_p(\mathbb{C})$ acts on the set $V$ of $n$-tuples of $p \times p$ matrices by simultaneous conjugation. We define a purely combinatorial poset, $\mathcal{P}_{p,n}$, whose maximal elements are in 1-1 correspondence with the irreducible components of $\mathcal{S}_{G,V}$. We show that $\mathcal{S}_{G,V}$ is a variety of dimension $(n+1)p^2-1$, and determine its subdimension for all $n$ and $p$. In particular we show the subdimension is $(n+1)p^2-p$ if $n \geq 3$, or $n \geq 2$ and $p \geq 4$. In the case $n \geq 3$, we give a formula for the number of components of given codimension in $\mathcal{S}_{G,V}$. We give explicit decompositions of $\mathcal{S}_{G,V}$ for all $n$ where $p=2,3$ or $4$. Our results in particular show that when $n\geq 2$ and $p\geq 4$, or $n\geq 3$ and $p=3$, $\mathbb{C}[V]^G$ does not contain a polynomial or hypersurface separating set. It was proven in arXiv:2202.05717 that the same is true if $n \geq 4$ and $p=2$. The author made a conjecture in arXiv:2211.17088 generalising the Skronowski-Weyman theorem for representations of quivers. The results of this paper prove that conjecture in two important special cases: for the quiver with one vertex and an arbitrary number, $n$, of loops, and for the quiver with two vertices and $n$ arrows between them.
title The separating variety for matrix invariants
topic Representation Theory
Commutative Algebra
Combinatorics
16G20, 13A50, 05E40, 14R20
url https://arxiv.org/abs/2508.13865