English

SOFT: a high-performance simulator for universal fault-tolerant quantum circuits

Quantum Physics 2025-12-30 v1

Abstract

Circuit simulation tools are critical for developing and assessing quantum-error-correcting and fault-tolerant strategies. In this work, we present SOFT, a high-performance SimulatOr for universal Fault-Tolerant quantum circuits. Integrating the generalized stabilizer formalism and highly optimized GPU parallelization, SOFT enables the simulation of noisy quantum circuits containing non-Clifford gates at a scale not accessible with existing tools. To provide a concrete demonstration, we simulate the state-of-the-art magic state cultivation (MSC) protocol at code distance d=5d=5, involving 42 qubits, 72 TT / TT^\dagger gates, and mid-circuit measurements. Using only modest GPU resources, SOFT performs over 200 billion shots and achieves the first ground-truth simulation of the cultivation protocol at a non-trivial scale. This endeavor not only certifies the MSC's effectiveness for generating high-fidelity logical TT-states, but also reveals a large discrepancy between the actual logical error rate and the previously reported values. Our work demonstrates the importance of reliable simulation tools for fault-tolerant architecture design, advancing the field from simulating quantum memory to simulating a universal quantum computer.

Keywords

Cite

@article{arxiv.2512.23037,
  title  = {SOFT: a high-performance simulator for universal fault-tolerant quantum circuits},
  author = {Riling Li and Keli Zheng and Yiming Zhang and Huazhe Lou and Shenggang Ying and Ke Liu and Xiaoming Sun},
  journal= {arXiv preprint arXiv:2512.23037},
  year   = {2025}
}
R2 v1 2026-07-01T08:43:36.407Z