Upper bounds on fault tolerance thresholds of noisy Clifford-based quantum computers

被引:11
|
作者
Plenio, M. B. [2 ,3 ,4 ]
Virmani, S. [1 ,3 ]
机构
[1] Univ Strathclyde, Dept Phys SUPA, Glasgow G4 0NG, Lanark, Scotland
[2] Univ Ulm, Inst Theoret Phys, D-89069 Ulm, Germany
[3] Univ London Imperial Coll Sci Technol & Med, Inst Math Sci, London SW7 2PG, England
[4] Univ London Imperial Coll Sci Technol & Med, Blackett Lab, QOLS, London SW7 2BW, England
来源
NEW JOURNAL OF PHYSICS | 2010年 / 12卷
基金
英国工程与自然科学研究理事会;
关键词
COMPUTATION; ENTANGLEMENT;
D O I
10.1088/1367-2630/12/3/033012
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
We consider the possibility of adding noise to a quantum circuit to make it efficiently simulatable classically. In previous works, this approach has been used to derive upper bounds to fault tolerance thresholds-usually by identifying a privileged resource, such as an entangling gate or a non-Clifford operation, and then deriving the noise levels required to make it 'unprivileged'. In this work, we consider extensions of this approach where noise is added to Clifford gates too and then 'commuted' around until it concentrates on attacking the non-Clifford resource. While commuting noise around is not always straightforward, we find that easy instances can be identified in popular fault tolerance proposals, thereby enabling sharper upper bounds to be derived in these cases. For instance we find that if we take Knill's (2005 Nature 434 39) fault tolerance proposal together with the ability to prepare any possible state in the XY plane of the Bloch sphere, then not more than 3.69% error-per-gate noise is sufficient to make it classical, and 13.71% of Knill's gamma noise model is sufficient. These bounds have been derived without noise being added to the decoding parts of the circuits. Introducing such noise in a toy example suggests that the present approach can be optimized further to yield tighter bounds.
引用
收藏
页数:19
相关论文
共 33 条
  • [21] Upper bounds for the clock speeds of fault-tolerant distributed quantum computation using satellites to supply entangled photon pairs
    Leone, Hudson
    Srikara, S.
    Rohde, Peter P.
    Devitt, Simon
    PHYSICAL REVIEW RESEARCH, 2023, 5 (04):
  • [22] Ameliorating Thermally Accelerated Aging With State-Based Application of Fault-Tolerance in Cyber-Physical Computers
    Krishna, C. Mani
    IEEE TRANSACTIONS ON RELIABILITY, 2015, 64 (01) : 4 - 14
  • [23] Clifford plus T-based implementation of fault-tolerant quantum circuits over XOR-Majority Graph
    Biswal, Laxmidhar
    Rahaman, Habibur
    Maity, Niladri Pratap
    MICROELECTRONICS JOURNAL, 2021, 116
  • [24] Quantum machine learning: a systematic categorization based on learning paradigms, NISQ suitability, and fault tolerance
    Majid, Bisma
    Sofi, Shabir Ahmed
    Jabeen, Zamrooda
    QUANTUM MACHINE INTELLIGENCE, 2025, 7 (01)
  • [25] A direct approach to fault-tolerance in measurement-based quantum computation via teleportation
    Silva, Marcus
    Danos, Vincent
    Kashefi, Elham
    Ollivier, Harold
    NEW JOURNAL OF PHYSICS, 2007, 9
  • [26] Design and analysis of a fault tolerance nano-scale code converter based on quantum-dots
    Xie, Changgui
    Zhao, Xin
    Navimipour, Nima Jafari
    NANO COMMUNICATION NETWORKS, 2024, 42
  • [27] Designing an efficient fault tolerance D-latch based on quantum dot cellular automata nanotechnology
    Seyedi, Saeid
    Darbandi, Mehdi
    Navimipour, Nima Jafari
    OPTIK, 2019, 185 : 827 - 837
  • [28] Upper bounds on key rates in device-independent quantum key distribution based on convex-combination attacks
    Lukanowski, Karol
    Balanzo-Juando, Maria
    Farkas, Mate
    Acin, Antonio
    Kolodynski, Jan
    QUANTUM, 2023, 7
  • [29] Scalable Networking of Neutral-Atom Qubits: Nanofiber-Based Approach for Multiprocessor Fault-Tolerant Quantum Computers
    Sunami, Shinichi
    Tamiya, Shiro
    Inoue, Ryotaro
    Yamasaki, Hayata
    Goban, Akihisa
    PRX QUANTUM, 2025, 6 (01):
  • [30] Correction to: A new three-level fault tolerance arithmetic and logic unit based on quantum dot cellular automata
    Mahya Rahimpour Gadim
    Nima Jafari Navimipour
    Microsystem Technologies, 2018, 24 : 1307 - 1307