Optical demonstration of quantum fault-tolerant threshold

被引:0
|
作者
Kai Sun
Ze-Yan Hao
Yan Wang
Jia-Kun Li
Xiao-Ye Xu
Jin-Shi Xu
Yong-Jian Han
Chuan-Feng Li
Guang-Can Guo
机构
[1] University of Science and Technology of China,CAS Key Laboratory of Quantum Information
[2] University of Science and Technology of China,CAS Center for Excellence in Quantum Information and Quantum Physics
[3] University of Science and Technology of China,Hefei National Laboratory
来源
Light: Science & Applications | / 11卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
A major challenge in practical quantum computation is the ineludible errors caused by the interaction of quantum systems with their environment. Fault-tolerant schemes, in which logical qubits are encoded by several physical qubits, enable to the output of a higher probability of correct logical qubits under the presence of errors. However, strict requirements to encode qubits and operators render the implementation of a full fault-tolerant computation challenging even for the achievable noisy intermediate-scale quantum technology. Especially the threshold for fault-tolerant computation still lacks experimental verification. Here, based on an all-optical setup, we experimentally demonstrate the existence of the threshold for the fault-tolerant protocol. Four physical qubits are represented as the spatial modes of two entangled photons, which are used to encode two logical qubits. The experimental results clearly show that when the error rate is below the threshold, the probability of correct output in the circuit, formed with fault-tolerant gates, is higher than that in the corresponding non-encoded circuit. In contrast, when the error rate is above the threshold, no advantage is observed in the fault-tolerant implementation. The developed high-accuracy optical system may provide a reliable platform to investigate error propagation in more complex circuits with fault-tolerant gates.
引用
收藏
相关论文
共 50 条
  • [41] Toward Early Fault-tolerant Quantum Computing
    Tokunaga Y.
    NTT Technical Review, 2023, 21 (11): : 43 - 48
  • [42] A new universal and fault-tolerant quantum basis
    Boykin, PO
    Mor, T
    Pulver, M
    Roychowdhury, V
    Vatan, F
    INFORMATION PROCESSING LETTERS, 2000, 75 (03) : 101 - 107
  • [43] Scaling and Renormalization in Fault-Tolerant Quantum Computers
    Raginsky, Maxim
    QUANTUM INFORMATION PROCESSING, 2003, 2 (03) : 249 - 258
  • [44] Fault-tolerant Quantum Private Comparison Protocol
    Min Xiao
    ChunAn Ma
    International Journal of Theoretical Physics, 2022, 61
  • [45] More Efficient Fault-Tolerant Quantum Computing
    Monroe, Don
    COMMUNICATIONS OF THE ACM, 2024, 67 (05) : 26 - 28
  • [46] Fault-Tolerant Quantum Anonymous Voting Protocol
    Wang, Sheng-lan
    Zhang, Shun
    Wang, Qing
    Shi, Run-hua
    INTERNATIONAL JOURNAL OF THEORETICAL PHYSICS, 2019, 58 (03) : 1008 - 1016
  • [47] Fault-tolerant quantum computation with local gates
    Gottesman, D
    JOURNAL OF MODERN OPTICS, 2000, 47 (2-3) : 333 - 345
  • [48] Scaling and Renormalization in Fault-Tolerant Quantum Computers
    Maxim Raginsky
    Quantum Information Processing, 2003, 2 : 249 - 258
  • [49] New limits on fault-tolerant quantum computation
    Buhrman, Harry
    Cleve, Richard
    Laurent, Monique
    Linden, Noah
    Schrijver, Alexander
    Unger, Falk
    47TH ANNUAL IEEE SYMPOSIUM ON FOUNDATIONS OF COMPUTER SCIENCE, PROCEEDINGS, 2006, : 411 - 419
  • [50] Fibonacci scheme for fault-tolerant quantum computation
    Aliferis, Panos
    Preskill, John
    PHYSICAL REVIEW A, 2009, 79 (01):