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Fabrication errors pose a significant challenge in scaling up solid-state quantum devices to the sizes required for fault-tolerant (FT) quantum applications.
A fast quantum mechanical algorithm for database search
Lov K Grover · 1996
Earlier work this paper cites.
Polynomial-time algorithms for prime factorization and discrete logarithms on a quantum computer
Peter W Shor · 1999
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Topological quantum memory
Eric Dennis, Alexei Kitaev, Andrew Landahl, and John Preskill · 2002
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Fault-tolerant quantum computation by anyons
A.Yu. Kitaev · 2003
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Confniement-higgs transition in a disordered gauge theory and the accuracy threshold for quantum memory
Chenyang Wang, Jim Harrington, and John Preskill · 2003
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Universal quantum computation with ideal clifford gates and noisy ancillas
Sergey Bravyi and Alexei Kitaev · 2005
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Topological quantum error correction with optimal encoding rate
H. Bombin and M. A. Martin-Delgado · 2006
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Thresholds for topological codes in the presence of loss
Thomas M. Stace, Sean D. Barrett, and Andrew C. Doherty · 2009
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Error correction and degeneracy in surface codes suffering loss
Thomas M. Stace and Sean D. Barrett · 2010
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Surface codes: Towards practical large-scale quantum computation
Austin G Fowler, Matteo Mariantoni, John M Martinis, and Andrew N Cleland · 2012
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Surface code quantum computing by lattice surgery
Clare Horsman, Austin G Fowler, Simon Devitt, and Rodney Van Meter · 2012
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Simulation of rare events in quantum error correction
Sergey Bravyi and Alexander Vargo · 2013
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Low-distance surface codes under realistic quantum noise
Yu Tomita and Krysta M. Svore · 2014
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Logical error rate scaling of the toric code
Fern H E Watson and Sean D Barrett · 2014
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Fault-tolerance thresholds for the surface code with fabrication errors
James M Auger, Hussain Anwar, Mercedes Gimeno-Segovia, Thomas M Stace, and Dan E Browne · 2017
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Poking holes and cutting corners to achieve clifford gates with the surface code
Benjamin J. Brown, Katharina Laubscher, Markus S. Kesselring, and James R. Wootton · 2017
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Building logical qubits in a superconducting quantum computing system
Jay M Gambetta, Jerry M Chow, and Matthias Steffen · 2017
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Surface code error correction on a defective lattice
Shota Nagayama, Austin G Fowler, Dominic Horsman, Simon J Devitt, and Rodney Van Meter · 2017
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Quantum computation with realistic magic-state factories
Joe O’Gorman and Earl T Campbell · 2017
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A four-qubit germanium quantum processor
Nico W. Hendrickx, William I. L. Lawrie, Maximilian Russ, Floor van Riggelen, Sander L. de Snoo, Raymond N. Schouten, Amir Sammak, Giordano Scappucci, and Menno Veldhorst · 2021
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Laser-annealing josephson junctions for yielding scaled-up superconducting quantum processors
Jared B Hertzberg, Eric J Zhang, Sami Rosenblatt, Easwar Magesan, John A Smolin, Jeng-Bang Yau, Vivekananda P Adiga, Martin Sandberg, Markus Brink, Jerry M Chow, et al · 2021
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Removing leakage-induced correlated errors in superconducting quantum error correction
Matt McEwen, Dvir Kafri, Z Chen, Juan Atalaya, KJ Satzinger, Chris Quintana, Paul Victor Klimov, Daniel Sank, C Gidney, AG Fowler, et al · 2021
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Quantum computing is scalable on a planar array of qubits with fabrication defects
Armands Strikis, Simon C Benjamin, and Benjamin J Brown · 2021
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Stability Experiments: The Overlooked Dual of Memory Experiments
Craig Gidney · 2022
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Austin G Fowler and Craig Gidney · 2018
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The role of entropy in topological quantum error correction
Michael E Beverland, Benjamin J Brown, Michael J Kastoryano, and Quentin Marolleau · 2019
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Efficient magic state factories with a catalyzed | C C Z ⟩ |CCZ\rangle to 2 | T ⟩ 2|T\rangle transformation
Craig Gidney and Austin G. Fowler · 2019
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A Game of Surface Codes: Large-Scale Quantum Computing with Lattice Surgery
Daniel Litinski · 2019
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Towards understanding two-level-systems in amorphous solids: insights from quantum circuits
Clemens Müller, Jared H Cole, and Jürgen Lisenfeld · 2019
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Improving wafer-scale josephson junction resistance variation in superconducting quantum coherent circuits
JM Kreikebaum, KP O’Brien, A Morvan, and I Siddiqi · 2020
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Ultrafast hole spin qubit with gate-tunable spin–orbit switch functionality
Florian N. M. Froning, Leon C. Camenzind, Orson A. H. van der Molen, Ang Li, Erik P. A. M. Bakkers, Dominik M. Zumbühl, and Floris R. Braakman · 2021
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Realizing repeated quantum error correction in a distance-three surface code
Sebastian Krinner, Nathan Lacroix, Ants Remm, Agustin Di Paolo, Elie Genois, Catherine Leroux, Christoph Hellings, Stefania Lazar, Francois Swiadek, Johannes Herrmann, Graham J. Norris, Christian Kraglund Andersen, Markus Müller, Alexandre Blais, Christopher Eichler, and Andreas Wallraff · 2022
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Adaptive surface code for quantum error correction in the presence of temporary or permanent defects
Adam Siegel, Armands Strikis, Thomas Flatters, and Simon Benjamin · 2022
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Scaling superconducting quantum computers with chiplet architectures
Kaitlin N Smith, Gokul Subramanian Ravi, Jonathan M Baker, and Frederic T Chong · 2022
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Matching and maximum likelihood decoding of a multi-round subsystem quantum error correction experiment, 2022
Neereja Sundaresan, Theodore J. Yoder, Youngseok Kim, Muyuan Li, Edward H. Chen, Grace Harper, Ted Thorbeck, Andrew W. Cross, Antonio D. Córcoles, and Maika Takita · 2022
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Q3de: A fault-tolerant quantum computer architecture for multi-bit burst errors by cosmic rays
Yasunari Suzuki, Takanori Sugiyama, Tomochika Arai, Wang Liao, Koji Inoue, and Teruo Tanimoto · 2022
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A synthesis framework for stitching surface code with superconducting quantum devices
Anbang Wu, Gushu Li, Hezi Zhang, Gian Giacomo Guerreschi, Yufei Ding, and Yuan Xie · 2022
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Conservation laws and quantum error correction: Towards a generalised matching decoder
Benjamin J. Brown · 2023
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Sparse blossom: correcting a million errors per core second with minimum-weight matching
Oscar Higgott and Craig Gidney · 2023
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