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Quantum system characterization techniques represent the front line in the identification and mitigation of noise in quantum computing, but can be expensive in terms of quantum resources and time to repeatedly employ.
What Randomized Benchmarking Actually Measures
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Complete Characterization of a Quantum Process: The Two-Bit Quantum Gate
J. F. Poyatos, J. I. Cirac, and P. Zoller · 1997
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Randomized benchmarking of quantum gates
E. Knill, D. Leibfried, R. Reichle, J. Britton, R. B. Blakestad, J. D. Jost, C. Langer, R. Ozeri, S. Seidelin, and D. J. Wineland · 2008
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Randomized benchmarking and process tomography for gate errors in a solid-state qubit
J. M. Chow, J. M. Gambetta, L. Tornberg, Jens Koch, Lev S. Bishop, A. A. Houck, B. R. Johnson, L. Frunzio, S. M. Girvin, and R. J. Schoelkopf · 2009
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Maps and inverse maps in open quantum dynamics
T. F Jordan · 2010
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Robust, self-consistent, closed-form tomography of quantum logic gates on a trapped ion qubit
R. Blume-Kohout, J. Gamble, E. Nielsen, J. Mizrahi, J. Sterk, and P. Maunz · 2013
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Self-consistent quantum process tomography
S. T. Merkel, J. M. Gambetta, J. A. Smolin, S. Poletto, A. D. Córcoles, B. R. Johnson, C. A. Ryan, and M. Steffen · 2013
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Superconducting quantum circuits at the surface code threshold for fault tolerance
R. Barends, J. Kelly, A. Megrant, A. Veitia, D. Sank, E. Jeffrey, T. C. White, J. Mutus, A. G. Fowler, B. Campbell, et al · 2014
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Optimal quantum control using randomized benchmarking
J. Kelly, R. Barends, B. Campbell, Y. Chen, Z. Chen, B. Chiaro, A. Dunsworth, A. G. Fowler, I. C. Hoi, E. Jeffrey, et al · 2014
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Nonexponential fidelity decay in randomized benchmarking with low-frequency noise
M. A. Fogarty, M. Veldhorst, R. Harper, C. H. Yang, S. D. Bartlett, S. T. Flammia, and A. S. Dzurak · 2015
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Estimating the coherence of noise
J. Wallman, C. Granade, R. Harper, and S. T. Flammia · 2015
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Introduction to quantum gate set tomography
D. Greenbaum · 2015
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High-Fidelity Trapped-Ion Quantum Logic Using Near-Field Microwaves
T. P. Harty, M. A. Sepiol, D. T. C. Allcock, C. J. Ballance, J. E. Tarlton, and D. M. Lucas · 2016
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Characterization of Two-Qubit Quantum Gates in Sandia’s High Optical Access surface ion trap., 2016
P. L. W. Maunz · 2016
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Characterizing errors on qubit operations via iterative randomized benchmarking
S. Sheldon, L. S. Bishop, E. Magesan, S. Filipp, J. M. Chow, and J. M. Gambetta · 2016
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Demonstration of qubit operations below a rigorous fault tolerance threshold with gate set tomography
R. Blume-Kohout, J. K. Gamble, E. Nielsen, K. Rudinger, J. Mizrahi, K. Fortier, and P. Maunz · 2017
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Unsupervised Machine Learning on Rigetti 19Q with Forest 1.2, 2017
W. Zeng · 2017
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Qiskit backend specifications for openqasm and openpulse experiments
D. C. McKay, T. Alexander, L. Bello, M. J. Biercuk, L. Bishop, J. Chen, J. M. Chow, A. D. Córcoles, D. Egger, S. Filipp, et al · 2018
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Quantum supremacy using a programmable superconducting processor
F. Arute et al · 2019
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IBM Opens Quantum Computation Center in New York; Brings World’s Largest Fleet of Quantum Computing Systems Online, Unveils New 53-Qubit Quantum System for Broad Use, 2019
C. Nay · 2019
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A two-qubit gate between phosphorus donor electrons in silicon
Y. He, S. K. Gorman, D. Keith, L. Kranz, J. G. Keizer, and M. Y. Simmons · 2019
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A Ten-Qubit Solid-State Spin Register with Quantum Memory up to One Minute
C. E. Bradley, J. Randall, M. H. Abobeih, R. C. Berrevoets, M. J. Degen, M. A. Bakker, M. Markham, D. J. Twitchen, and T. H. Taminiau · 2019
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T. E. O’Brien, B. Tarasinski, and L. DiCarlo · 2017
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Error Mitigation for Short-Depth Quantum Circuits
K. Temme, S. Bravyi, and J. M. Gambetta · 2017
Cited alongside, same era.
Intel’s 49-Qubit Chip Shoots for Quantum Supremacy, 2018
J. Hsu · 2018
Cited alongside, same era.
Integrated-optics heralded controlled-NOT gate for polarization-encoded qubits
J. Zeuner, A. N. Sharma, M. Tillmann, R. Heilmann, M. Gräfe, A. Moqanaki, A. Szameit, and P. Walther · 2018
Cited alongside, same era.
Fluctuations of energy-relaxation times in superconducting qubits
P. V. Klimov, J. Kelly, Z. Chen, M. Neeley, A. Megrant, B. Burkett, R. Barends, K. Arya, B. Chiaro, Yu Chen, et al · 2018
Cited alongside, same era.
Practical Quantum Error Mitigation for Near-Future Applications
S. Endo, S. C. Benjamin, and Y. Li · 2018
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Quantum computation with universal error mitigation on a superconducting quantum processor
C. Song, J. Cui, H. Wang, J. Hao, H. Feng, and Y. Li · 2019
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Direct Randomized Benchmarking for Multiqubit Devices
T. J. Proctor, A. Carignan-Dugas, K. Rudinger, E. Nielsen, R. Blume-Kohout, and K. Young · 2019
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Demonstration of a parametrically activated entangling gate protected from flux noise
S. S. Hong, A. T. Papageorge, P. Sivarajah, G. Crossman, N. Didier, A. M. Polloreno, E. A. Sete, S. W. Turkowski, M. P. da Silva, and B. R. Johnson · 2020
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Superconducting qubits: Current state of play
M. Kjaergaard, M. E. Schwartz, J. Braumüller, P. Krantz, J. I.-J. Wang, S. Gustavsson, and W. D. Oliver · 2020
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Error-mitigated quantum gates exceeding physical fidelities in a trapped-ion system
S. Zhang, Y. Lu, K. Zhang, W. Chen, Y. Li, J. N. Zhang, and K. Kim · 2020
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Probing quantum processor performance with pyGSTi
E. Nielsen, K. Rudinger, T. Proctor, A. Russo, K. Young, and R. Blume-Kohout · 2020
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