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Global Variational Quantum Circuits for Arbitrary Symmetric State Preparation

Quantum Physics 2025-06-24 v2 Atomic Physics

Abstract

Quantum states that are symmetric under particle exchange play a crucial role in fields such as quantum metrology and quantum error correction. We use a variational circuit composed of global one-axis twisting and global rotations to efficiently prepare arbitrary symmetric states, i.e. any superposition of Dicke states. The circuit does not require local addressability or ancilla qubits and thus can be readily implemented in a variety of experimental platforms including trapped-ion quantum simulators and cavity QED systems. We provide analytic and numerical evidence that any NN-qubit symmetric state can be prepared in 2N/32N/3 steps. We demonstrate the utility of our protocol by preparing (i) metrologically useful NN-qubit Dicke states of up to N=300N = 300 qubits in O(1)\mathcal{O}(1) gate steps with theoretical infidelities 1F<1031-\mathcal{F} < 10^{-3}, (ii) the N=9N = 9 Ruskai codewords in P=4P = 4 gate steps with 1F<1041-\mathcal{F} < 10^{-4}, and (iii) the N=13N = 13 Gross codewords in P=7P = 7 gate steps with 1F<1041-\mathcal{F} < 10^{-4}. Focusing on trapped-ion platforms, for the N=9N = 9 Ruskai and N=13N = 13 Gross codewords we estimate that the protocol achieves fidelities 95%\gtrsim 95\% in the presence of typical experimental noise levels, thus providing a pathway to the preparation of a wide range of useful highly-entangled quantum states.

Keywords

Cite

@article{arxiv.2312.05060,
  title  = {Global Variational Quantum Circuits for Arbitrary Symmetric State Preparation},
  author = {Liam J. Bond and Matthew J. Davis and Jiří Minář and Rene Gerritsma and Gavin K. Brennen and Arghavan Safavi-Naini},
  journal= {arXiv preprint arXiv:2312.05060},
  year   = {2025}
}

Comments

V2. 7+4 pages, 4+2 figures. New title. Added figure & supplemental material. Close to published version

R2 v1 2026-06-28T13:45:06.778Z