English

Hypothesis testing of symmetry in quantum dynamics

Quantum Physics 2025-04-01 v2 Information Theory math.IT

Abstract

Symmetry plays a crucial role in quantum physics, dictating the behavior and dynamics of physical systems. In this paper, we develop a hypothesis-testing framework for quantum dynamics symmetry using a limited number of queries to the unknown unitary operation and establish the quantum max-relative entropy lower bound for the type-II error. We construct optimal ancilla-free protocols that achieve optimal type-II error probability for testing time-reversal symmetry (T-symmetry) and diagonal symmetry (Z-symmetry) with limited queries. Contrasting with the advantages of indefinite causal order strategies in various quantum information processing tasks, we show that parallel, adaptive, and indefinite causal order strategies have equal power for our tasks. We establish optimal protocols for T-symmetry testing and Z-symmetry testing for 6 and 5 queries, respectively, from which we infer that the type-II error exhibits a decay rate of O(m2)\mathcal{O}(m^{-2}) with respect to the number of queries mm. This represents a significant improvement over the basic repetition protocols without using global entanglement, where the error decays at a slower rate of O(m1)\mathcal{O}(m^{-1}).

Keywords

Cite

@article{arxiv.2411.14292,
  title  = {Hypothesis testing of symmetry in quantum dynamics},
  author = {Yu-Ao Chen and Chenghong Zhu and Keming He and Yingjian Liu and Xin Wang},
  journal= {arXiv preprint arXiv:2411.14292},
  year   = {2025}
}

Comments

v2, 15 pages including appendix

R2 v1 2026-06-28T20:08:01.332Z