English

Quantum-classical crossover in fault-tolerant quantum dynamics simulation

Quantum Physics 2026-07-17 v1 Strongly Correlated Electrons High Energy Physics - Theory Mathematical Physics

Abstract

While quantum computers promise to solve classically intractable problems, identifying the point at which fault-tolerant quantum computation outperforms the best classical algorithms for practical applications remains an outstanding challenge. Here we establish a concrete quantum-classical crossover for quantum many-body dynamics under realistic hardware conditions. We introduce a scalable fault-tolerant framework that combines coherent observable estimation with a space-time-efficient implementation of non-Clifford rotations, suppressing the residual logical errors that limit existing partially fault-tolerant approaches. A benchmark against state-of-the-art tensor-network and variational Monte Carlo algorithms reveals a concrete crossover for mixed-field Ising dynamics at modest system sizes. For a physical error rate of p=103p=10^{-3}, fault-tolerant simulation requires approximately 2 hours and 3.7×1053.7 \times 10^5 physical qubits for a 100-site 1D system, whereas tensor network approaches would require about 100 years. For 2D models, where rapid entanglement growth limits the classical evolution time, we project quantum runtimes within minutes. A physical error rate of p=104p=10^{-4} leads to at least an order of magnitude reduction in qubit count (3.1×1043.1 \times 10^4 physical qubits) and runtime (minutes for 1D and seconds for 2D). The reduction in quantum runtime arises from our improved rotation-state injection and co-design of quantum error correction and observable-estimation protocols, which jointly suppress logical-error accumulation and reduce sampling overhead. Our results establish a scalable route towards practical quantum advantage and identify quantitative engineering targets for future fault-tolerant architectures.

Cite

@article{arxiv.2607.16116,
  title  = {Quantum-classical crossover in fault-tolerant quantum dynamics simulation},
  author = {Jinzhao Sun and Bozhen Zhou and Jue Xu and Yuan Yao and Zhenyu Du and Zixu Zhang and Yuntian Gu and Junxiang Huang and Shuo Zhou and Ziruo Wang and Alexander Yosifov and Wenzheng Dong and Yiming Huang and Daniel Serrano and Xinzhao Wang and Tianfeng Feng and Shreyas Sadugol and Wenjun Yu and Zhou You and Dayue Qin and Xiao-Ming Zhang and Yantao Wu and Aditya Iyer and You Zhou and Tongyang Li and Ying Li and Xiongfeng Ma and Qi Zhao and Pei Zeng and Pan Zhang and Xiao Yuan},
  journal= {arXiv preprint arXiv:2607.16116},
  year   = {2026}
}

Comments

45 pages, 25 figures, 7 tables