Benchmarking quantum processors with a single qubit

被引:0
|
作者
Oktay Göktaş
Weng Kian Tham
Kent Bonsma-Fisher
Aharon Brodutch
机构
[1] University of Toronto,Department of Physics, Centre for Quantum Information and Quantum Control
[2] Agnostiq Labs,The Edward S. Rogers Department of Electrical and Computer Engineering
[3] National Research Council of Canada,undefined
[4] University of Toronto,undefined
来源
关键词
Quantum benchmarking; DQC1; Jones polynomials; NISQ; IBM;
D O I
暂无
中图分类号
学科分类号
摘要
The first generation of small noisy quantum processors have recently become available to non-specialists who are not required to understand specifics of the physical platforms and, in particular, the types and sources of noise. As such, it is useful to benchmark the performance of such computers against specific tasks that may be of interest to users, ideally keeping both the circuit depth and width as free parameters. Here, we benchmark the IBM quantum experience using the deterministic quantum computing with 1 qubit (DQC1) algorithm originally proposed by Knill and Laflamme in the context of liquid-state NMR. In the first set of experiments, we use DQC1 as a trace estimation algorithm to benchmark performance with respect to circuit depth. In the second set, we use this trace estimation algorithm to distinguish between knots, a classically difficult task which is known to be complete for DQC1. Our results indicate that the main limiting factor is the depth of the circuit and that both random and systematic errors become an issue when the gate count increases. Surprisingly, we find that at the same gate count wider circuits perform better, probably due to randomization of coherent errors.
引用
收藏
相关论文
共 50 条
  • [1] Benchmarking quantum processors with a single qubit
    Goktas, Oktay
    Tham, Weng Kian
    Bonsma-Fisher, Kent
    Brodutch, Aharon
    [J]. QUANTUM INFORMATION PROCESSING, 2020, 19 (05)
  • [2] Benchmarking an 11-qubit quantum computer
    K. Wright
    K. M. Beck
    S. Debnath
    J. M. Amini
    Y. Nam
    N. Grzesiak
    J.-S. Chen
    N. C. Pisenti
    M. Chmielewski
    C. Collins
    K. M. Hudek
    J. Mizrahi
    J. D. Wong-Campos
    S. Allen
    J. Apisdorf
    P. Solomon
    M. Williams
    A. M. Ducore
    A. Blinov
    S. M. Kreikemeier
    V. Chaplin
    M. Keesan
    C. Monroe
    J. Kim
    [J]. Nature Communications, 10
  • [3] Benchmarking an 11-qubit quantum computer
    Wright, K.
    Beck, K. M.
    Debnath, S.
    Amini, J. M.
    Nam, Y.
    Grzesiak, N.
    Chen, J. -S.
    Pisenti, N. C.
    Chmielewski, M.
    Collins, C.
    Hudek, K. M.
    Mizrahi, J.
    Wong-Campos, J. D.
    Allen, S.
    Apisdorf, J.
    Solomon, P.
    Williams, M.
    Ducore, A. M.
    Blinov, A.
    Kreikemeier, S. M.
    Chaplin, V.
    Keesan, M.
    Monroe, C.
    Kim, J.
    [J]. NATURE COMMUNICATIONS, 2019, 10 (1)
  • [4] Quantum-Classical Variational Approaches with Single-Qubit Operation on Near-Term Quantum Processors
    Miki, T.
    Tsukayama, D.
    Okita, R.
    Shimada, M.
    Shirakashi, J.
    [J]. 2022 IEEE 22ND INTERNATIONAL CONFERENCE ON NANOTECHNOLOGY (NANO), 2022, : 303 - 306
  • [5] Quantum control of a single qubit
    Branczyk, Agata M.
    Mendonca, Paulo E. M. F.
    Gilchrist, Alexei
    Doherty, Andrew C.
    Bartlett, Stephen D.
    [J]. PHYSICAL REVIEW A, 2007, 75 (01):
  • [6] Benchmarking quantum control methods on a 12-qubit system
    Negrevergne, C
    Mahesh, TS
    Ryan, CA
    Ditty, M
    Cyr-Racine, F
    Power, W
    Boulant, N
    Havel, T
    Cory, DG
    Laflamme, R
    [J]. PHYSICAL REVIEW LETTERS, 2006, 96 (17)
  • [7] Reducing Leakage of Single-Qubit Gates for Superconducting Quantum Processors Using Analytical Control Pulse Envelopes
    Hyyppa, Eric
    Vepsalainen, Antti
    Papic, Miha
    Chan, Chun Fai
    Inel, Sinan
    Landra, Alessandro
    Liu, Wei
    Marxer, Fabian
    Luus, Jurgen
    Ockeloen-Korppi, Caspar
    Orbell, Sebastian
    Tarasinski, Brian
    Heinsoo, Johannes
    [J]. PRX QUANTUM, 2024, 5 (03):
  • [8] Qubit read-out in Semiconductor quantum processors: challenges and perspectives
    Meunier, T.
    Urdampilleta, M.
    Niegemann, D.
    Jadot, B.
    Charion, E.
    Mortemousque, P. -A.
    Spence, C.
    Bertrand, B.
    Billiot, G.
    Casse, M.
    Hutin, L.
    Jacquinot, H.
    Pillonet, G.
    Rambal, N.
    Thonnart, Y.
    Amisse, A.
    Apra, A.
    Bourdet, L.
    Crippa, A.
    Ezzouch, R.
    Jehl, X.
    Maurand, R.
    Niquet, Y. -M.
    Sanquer, M.
    Venitucci, B.
    De Franceschi, S.
    Vinet, M.
    [J]. 2019 IEEE INTERNATIONAL ELECTRON DEVICES MEETING (IEDM), 2019,
  • [9] Benchmarking the noise sensitivity of different parametric two-qubit gates in a single superconducting quantum computing platform
    Ganzhorn, M.
    Salis, G.
    Egger, D. J.
    Fuhrer, A.
    Mergenthaler, M.
    Mueller, C.
    Mueller, P.
    Paredes, S.
    Pechal, M.
    Werninghaus, M.
    Filipp, S.
    [J]. PHYSICAL REVIEW RESEARCH, 2020, 2 (03):
  • [10] Benchmarking quantum computers: The five-qubit error correcting code
    Knill, E
    Laflamme, R
    Martinez, R
    Negrevergne, C
    [J]. PHYSICAL REVIEW LETTERS, 2001, 86 (25) : 5811 - 5814