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Unitary designs in nearly optimal depth

Quantum Physics 2025-07-22 v2 Computational Complexity Information Theory Mathematical Physics math.IT math.MP

Abstract

We construct ε\varepsilon-approximate unitary kk-designs on nn qubits in circuit depth O(logkloglognk/ε)O(\log k \log \log n k / \varepsilon). The depth is exponentially improved over all known results in all three parameters nn, kk, ε\varepsilon. We further show that each dependence is optimal up to exponentially smaller factors. Our construction uses O~(nk)\tilde{{O}}(nk) ancilla qubits and O(nk){O}(nk) bits of randomness, which are also optimal up to log(nk)\log(n k) factors. An alternative construction achieves a smaller ancilla count O~(n)\tilde{{O}}(n) with circuit depth O(kloglognk/ε){O}(k \log \log nk/\varepsilon). To achieve these efficient unitary designs, we introduce a highly-structured random unitary ensemble that leverages long-range two-qubit gates and low-depth implementations of random classical hash functions. We also develop a new analytical framework for bounding errors in quantum experiments involving many queries to random unitaries. As an illustration of this framework's versatility, we provide a succinct alternative proof of the existence of pseudorandom unitaries.

Keywords

Cite

@article{arxiv.2507.06216,
  title  = {Unitary designs in nearly optimal depth},
  author = {Laura Cui and Thomas Schuster and Fernando Brandao and Hsin-Yuan Huang},
  journal= {arXiv preprint arXiv:2507.06216},
  year   = {2025}
}

Comments

8+31 pages, 3+1 figures

R2 v1 2026-07-01T03:52:04.915Z