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Realizing universal fault-tolerant quantum computation is a key goal in quantum information science.
Fault-tolerant quantum computation
Peter W. Shor · 1996
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Richard Cleve and Daniel Gottesman · 1997
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Daniel Gottesman · 1998
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Dorit Aharonov and Michael Ben-Or · 1999
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Sergey Bravyi and Alexei Kitaev · 2005
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H. Bombin and M. A. Martin-Delgado · 2006
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Mathematical statistics and data analysis
John A Rice · 2007
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Restrictions on Transversal Encoded Quantum Gate Sets, Physical Review Letters
Bryan Eastin and Emanuel Knill · 2009
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Daniel Gottesman · 2010
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Quantum Computation and Quantum Information
Michael A. Nielsen and Isaac L. Chuang · 2010
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Experimental magic state distillation for fault-tolerant quantum computing, Nature Communications 2011 2:1
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Fault-tolerant quantum computing with color codes, arXiv preprint arXiv:1108.5738
Andrew J. Landahl, et al · 2011
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Sergey Bravyi and Robert Koenig · 2012
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Austin G. Fowler, et al · 2012
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Cody Jones · 2012
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Gauge color codes: optimal transversal gates and gauge fixing in topological stabilizer codes, New Journal of Physics
Héctor Bombín · 2015
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Aleksander Kubica, et al · 2015
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An atom-by-atom assembler of defect-free arbitrary two-dimensional atomic arrays, Science
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Atom-by-atom assembly of defect-free one-dimensional cold atom arrays, Science
Manuel Endres, et al · 2016
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In situ single-atom array synthesis using dynamic holographic optical tweezers, Nature Communications 2016 7:1
Hyosub Kim, et al · 2016
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Minimizing resource overheads for fault-tolerant preparation of encoded states of the Steane code, Scientific Reports 2016 6:1
Hayato Goto · 2016
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Roads towards fault-tolerant universal quantum computation, Nature
Earl T. Campbell, et al · 2017
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Joe O’Gorman and Earl T. Campbell · 2017
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Practical adaptive quantum tomography, New Journal of Physics
Christopher Granade, et al · 2017
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Fault-tolerant quantum computation with few qubits, npj Quantum Information 2018 4:1
Rui Chao and Ben W. Reichardt · 2018
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Quantum Error Correction with only Two Extra Qubits, Physical Review Letters
Rui Chao and Ben W. Reichardt · 2018
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Magic State Distillation: Not as Costly as You Think, Quantum
Daniel Litinski · 2019
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Efficient magic state factories with a catalyzed | C C Z ⟩ |CCZ\rangle to 2 | T ⟩ 2|T\rangle transformation, Quantum
Craig Gidney and Austin G. Fowler · 2019
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Fault-tolerant magic state preparation with flag qubits, Quantum
Christopher Chamberland and Andrew W. Cross · 2019
Midcircuit Measurements on a Single-Species Neutral Alkali Atom Quantum Processor, Physical Review X
T. M. Graham, et al · 2023
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Midcircuit Operations Using the omg Architecture in Neutral Atom Arrays, Physical Review X
Joanna W. Lis, et al · 2023
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Midcircuit Qubit Measurement and Rearrangement in a Yb 171 Atomic Array, Physical Review X
M. A. Norcia, et al · 2023
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High-fidelity parallel entangling gates on a neutral-atom quantum computer, Nature
Simon J Evered, et al · 2023
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High-fidelity gates and mid-circuit erasure conversion in an atomic qubit, Nature
Shuo Ma, et al · 2023
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Erasure conversion in a high-fidelity Rydberg quantum simulator, Nature
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Cited alongside, same era.
Parallel Implementation of High-Fidelity Multiqubit Gates with Neutral Atoms, Physical Review Letters
Harry Levine, et al · 2019
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Simulation of quantum circuits by low-rank stabilizer decompositions, Quantum
Sergey Bravyi, et al · 2019
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Very low overhead fault-tolerant magic state preparation using redundant ancilla encoding and flag qubits, npj Quantum Information 2020 6:1
Christopher Chamberland and Kyungjoo Noh · 2020
Cited alongside, same era.
Realization of real-time fault-tolerant quantum error correction, Physical Review X
C. Ryan-Anderson, et al · 2021
Cited alongside, same era.
Quantum phases of matter on a 256-atom programmable quantum simulator, Nature 2021 595:7866
Sepehr Ebadi, et al · 2021
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Stim: a fast stabilizer circuit simulator, Quantum
Craig Gidney · 2021
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Pascal Scholl, et al · 2023
Later among the works it cites.
Yoked surface codes, arXiv preprint arXiv:2312.04522
Craig Gidney, et al · 2023
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Quantum error correction below the surface code threshold, Nature 2024
Rajeev Acharya, et al · 2024
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Logical quantum processor based on reconfigurable atom arrays, Nature
Dolev Bluvstein, et al · 2024
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Harald Putterman, et al · 2024
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A. Paetznick, et al · 2024
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Encoding a magic state with beyond break-even fidelity, Nature
Riddhi S. Gupta, et al · 2024
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Magic state cultivation: growing T states as cheap as CNOT gates, arXiv preprint arXiv:2409.17595
Craig Gidney, et al · 2024
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Correlated decoding of logical algorithms with transversal gates, arXiv preprint arXiv:2403.03272
Madelyn Cain, et al · 2024
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Mitigating errors in logical qubits, Communications Physics
Samuel C. Smith, et al · 2024
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Yutaka Hirano, et al · 2024
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Tomohiro Itogawa, et al · 2024
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Karl Mayer, et al · 2024
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Tweet by Craig Gidney, x.com/craiggidney/status/1714918545375846402, 2024
Craig Gidney · 2024
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Quantum computing with Qiskit, arXiv preprint arXiv:2405.08810
Ali Javadi-Abhari, et al · 2024
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Gurobi Optimizer Reference Manual, 2024
Gurobi Optimization, LLC · 2024
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Efficient soft-output decoders for the surface code, arXiv preprint arXiv:2405.07433
Nadine Meister, et al · 2024
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QuEra Computing and Collaborators, in preparation
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QuEra Computing and Collaborators, in preparation
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