English

A fast and exact approach for stabilizer R\'enyi entropy via the XOR-FWHT algorithm

Quantum Physics 2026-03-26 v3

Abstract

Quantum advantage is widely understood to rely on key quantum resources beyond entanglement, among which nonstabilizerness (quantum ``magic'') plays a central role in enabling universal quantum computation. However, the exact evaluation of the second-order stabilizer R\'enyi entropy for generic many-body quantum states remains computationally challenging, with brute-force methods scaling as O(8N)\mathcal O(8^N) for an NN-qubit state. Here we develop a deterministic and exact algorithm that reduces this cost to O(N4N)\mathcal{O}(N4^N) while retaining natural parallelism. This advance enables high-precision exact calculations for generic state vectors at medium system sizes, and provides a practical tool for investigating the scaling, phase structure, and nonequilibrium dynamics of quantum magic in many-body systems.

Keywords

Cite

@article{arxiv.2512.24685,
  title  = {A fast and exact approach for stabilizer R\'enyi entropy via the XOR-FWHT algorithm},
  author = {Xuyang Huang and Han-Ze Li and Ching Hua Lee and Jian-Xin Zhong},
  journal= {arXiv preprint arXiv:2512.24685},
  year   = {2026}
}

Comments

Any comments are wecome!