English

Efficient Learning of Structured Quantum Circuits via Pauli Dimensionality and Sparsity

Quantum Physics 2026-04-07 v2 Data Structures and Algorithms

Abstract

We study the problem of efficiently learning an unknown nn-qubit unitary channel in diamond distance given query access. We present a general framework showing that if Pauli operators remain low-complexity under conjugation by a unitary, then the unitary can be learned efficiently. This framework yields polynomial-time algorithms for a wide range of circuit classes, including O(loglogn)O(\log \log n)-depth circuits, quantum O(logn)O(\log n)-juntas, near-Clifford circuits, the Clifford hierarchy, fermionic matchgate circuits, and certain compositions thereof. Our results unify and generalize prior work, and yield efficient learning algorithms for more expressive circuit classes than were previously known. Our framework is powered by new learning algorithms for unitaries whose Pauli spectrum is either supported on a small subgroup or is sparse. If the Pauli spectrum is supported on a subgroup of size 2k2^k, we give an O~(2k/ϵ)\widetilde{O}(2^k/\epsilon)-query algorithm and a nearly matching Ω(2k/ϵ)\Omega(2^k/\epsilon) lower bound. For k=2nk = 2n, we recover the optimal O(4n/ϵ)O(4^n/\epsilon)-query algorithm of Haah, Kothari, O'Donnell, and Tang [FOCS '23]. If the Pauli spectrum is supported on ss Pauli operators, we give an O(s2/ϵ2)O(s^2/\epsilon^2)-query algorithm and an Ω(s/ϵ)\Omega(s/\epsilon) lower bound.

Keywords

Cite

@article{arxiv.2510.00168,
  title  = {Efficient Learning of Structured Quantum Circuits via Pauli Dimensionality and Sparsity},
  author = {Sabee Grewal and Daniel Liang},
  journal= {arXiv preprint arXiv:2510.00168},
  year   = {2026}
}

Comments

46 pages; added new results; overhauled presentation of the paper; title changed

R2 v1 2026-07-01T06:08:49.263Z