Group-Algebraic Tensors: Provably-optimal Equivariant Learning and Physical Symmetry Discovery
Abstract
We introduce the tensor algebra, in which any finite group defines the multiplication rule, making equivariance an intrinsic algebraic property rather than an architectural constraint. The framework rests on three machine-verified theoretical pillars: (i)~an Eckart-Young optimality guarantee for the -SVD: the first such result for symmetry-preserving tensor approximation, exact and polynomial-time; (ii)~a Kronecker factorization that composes multiple symmetries by replacing with with no architectural redesign; and (iii)~a 600-line Lean~4 formalization of the algebra. The framework provides capabilities that equivariant neural networks (ENNs) structurally cannot: a closed-form per-irreducible-representation decomposition of every prediction, and data-driven discovery of the symmetry group that best fits a dataset. As a non-trivial empirical demonstration, decomposing QM9 molecular geometry over the chiral octahedral subgroup of SO(3) recovers the Wigner--Eckart selection rules of angular momentum from data alone, with no quantum mechanical input: scalar properties are A-dominated, dipole components are T-dominated, the isotropic polarizability is uniquely insensitive to as the rank-2-trace decomposition requires, and the T/A predictive-power ratio separates vector observables from scalar observables by a factor of five. On full QM9 (130{,}831 molecules), -SVD with ridge regression provides closed form predictions at fewer parameters than parameter-matched MLPs. Algebraic equivariance thus complements architectural equivariance not as a faster-better-cheaper alternative but as a different mathematical affordance: provably-optimal symmetry-preserving compression, per-irrep interpretability, and data-driven physical discovery.
Keywords
Cite
@article{arxiv.2605.20440,
title = {Group-Algebraic Tensors: Provably-optimal Equivariant Learning and Physical Symmetry Discovery},
author = {Paulina Hoyos and Shashanka Ubaru and Dongsung Huh and Vasileios Kalantzis and Kenneth L. Clarkson and Misha Kilmer and Haim Avron and Lior Horesh},
journal= {arXiv preprint arXiv:2605.20440},
year = {2026}
}