O-Sensing: Operator Sensing for Interaction Geometry and Symmetries

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Auteurs principaux: Ye-Ming, Meng, Zhe-Yu, Shi
Format: Preprint
Publié: 2026
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author Ye-Ming, Meng
Zhe-Yu, Shi
author_facet Ye-Ming, Meng
Zhe-Yu, Shi
contents We ask whether the Hamiltonian, interaction geometry, and symmetries of a quantum many-body system can be inferred from a few low-lying eigenstates without knowing which sites interact with each other. Directly solving the eigenvalue equations imposes constraints that yield a highly degenerate subspace of candidate operators, where the local Hamiltonian is hidden among an extensive family of conserved quantities, obscuring the interaction geometry. Here we introduce O-Sensing, a protocol designed to extract the Hamiltonian and symmetries directly from these states. Specifically, O-Sensing employs parsimony-driven optimization to extract a maximally sparse operator basis from the degenerate subspace. The Hamiltonian is then selected from this basis by maximizing spectral entropy (effectively minimizing degeneracy) within the sampled subspace. We validate O-Sensing on Heisenberg models on connected Erdős--Rényi graphs, where it reconstructs the interaction geometry and uncovers additional long-range conserved operators. We establish a learnability phase diagram across graph densities, featuring a pronounced ``confusion'' regime where parsimony favors a dual description on the complement graph. These results show that sparsity optimization can reconstruct interaction geometry as an emergent output, enabling simultaneous recovery of the Hamiltonian and its symmetries from low-energy eigenstates.
format Preprint
id arxiv_https___arxiv_org_abs_2603_03826
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle O-Sensing: Operator Sensing for Interaction Geometry and Symmetries
Ye-Ming, Meng
Zhe-Yu, Shi
Quantum Physics
Statistical Mechanics
Strongly Correlated Electrons
Data Analysis, Statistics and Probability
We ask whether the Hamiltonian, interaction geometry, and symmetries of a quantum many-body system can be inferred from a few low-lying eigenstates without knowing which sites interact with each other. Directly solving the eigenvalue equations imposes constraints that yield a highly degenerate subspace of candidate operators, where the local Hamiltonian is hidden among an extensive family of conserved quantities, obscuring the interaction geometry. Here we introduce O-Sensing, a protocol designed to extract the Hamiltonian and symmetries directly from these states. Specifically, O-Sensing employs parsimony-driven optimization to extract a maximally sparse operator basis from the degenerate subspace. The Hamiltonian is then selected from this basis by maximizing spectral entropy (effectively minimizing degeneracy) within the sampled subspace. We validate O-Sensing on Heisenberg models on connected Erdős--Rényi graphs, where it reconstructs the interaction geometry and uncovers additional long-range conserved operators. We establish a learnability phase diagram across graph densities, featuring a pronounced ``confusion'' regime where parsimony favors a dual description on the complement graph. These results show that sparsity optimization can reconstruct interaction geometry as an emergent output, enabling simultaneous recovery of the Hamiltonian and its symmetries from low-energy eigenstates.
title O-Sensing: Operator Sensing for Interaction Geometry and Symmetries
topic Quantum Physics
Statistical Mechanics
Strongly Correlated Electrons
Data Analysis, Statistics and Probability
url https://arxiv.org/abs/2603.03826