arXiv · 2305.13409
Efficient Learning of Quantum States Prepared With Few Non-Clifford Gates
Abstract
We give a pair of algorithms that efficiently learn a quantum state prepared by Clifford gates and $O(\log n)$ non-Clifford gates. Specifically, for an $n$-qubit state $|\psi\rangle$ prepared with at most $t$ non-Clifford gates, our algorithms use $\mathsf{poly}(n,2^t,1/\varepsilon)$ time and copies of $|\psi\rangle$ to learn $|\psi\rangle$ to trace distance at most $\varepsilon$. The first algorithm for this task is more efficient, but requires entangled measurements across two copies of $|\psi\rangle$. The second algorithm uses only single-copy measurements at the cost of polynomial factors in runtime and sample complexity. Our algorithms more generally learn any state with sufficiently large stabilizer dimension, where a quantum state has stabilizer dimension $k$ if it is stabilized by an abelian group of $2^k$ Pauli operators. We also develop an efficient property testing algorithm for stabilizer dimension, which may be of independent interest.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Sabee Grewal, Vishnu Iyer, William Kretschmer, Daniel Liang. 2023-05-22. Efficient Learning of Quantum States Prepared With Few Non-Clifford Gates. https://doi.org/10.22331/q-2025-11-06-1907
Cite the original work for its findings. Save a collection to share your selection of sources.