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Quantum Error Correction (QEC) codes are essential for achieving fault-tolerant quantum computing (FTQC).
An algorithm for path connections and its applications
Chin Yang Lee · 1961
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Going beyond bell’s theorem
Daniel M Greenberger, Michael A Horne, and Anton Zeilinger · 1989
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Scheme for reducing decoherence in quantum computer memory
Peter W Shor · 1995
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Good quantum error-correcting codes exist
A Robert Calderbank and Peter W Shor · 1996
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Multiple-particle interference and quantum error correction
Andrew Steane · 1996
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Fault-tolerant quantum computation with constant error
Dorit Aharonov and Michael Ben-Or · 1997
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Theory of quantum error-correcting codes
Emanuel Knill and Raymond Laflamme · 1997
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Resilient quantum computation
Emanuel Knill, Raymond Laflamme, and Wojciech H Zurek · 1998
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Quantum codes on a lattice with boundary
Sergey B Bravyi and A Yu Kitaev · 1998
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Theory of fault-tolerant quantum computation
Daniel Gottesman · 1998
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Quantum reed-muller codes
Andrew M Steane · 1999
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Fault-tolerant quantum computation by anyons
A Yu Kitaev · 2003
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Balanced graph partitioning
Konstantin Andreev and Harald Räcke · 2004
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Optimal resources for topological two-dimensional stabilizer codes: Comparative study
Héctor Bombín and Miguel A Martin-Delgado · 2007
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Subsystem fault tolerance with the bacon-shor code
Panos Aliferis and Andrew W Cross · 2007
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Effective fault-tolerant quantum computation with slow measurements
David P DiVincenzo and Panos Aliferis · 2007
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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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Handbook of satisfiability
Armin Biere, Marijn Heule, and Hans van Maaren · 2009
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Quantum computation and quantum information
Michael A Nielsen and Isaac L Chuang · 2010
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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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Quantum ldpc codes with positive rate and minimum distance proportional to the square root of the blocklength
Jean-Pierre Tillich and Gilles Zémor · 2013
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Low-distance surface codes under realistic quantum noise
Yu Tomita and Krysta M Svore · 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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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 computing in the nisq era and beyond
John Preskill · 2018
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Device challenges for near term superconducting quantum processors: frequency collisions
Markus Brink, Jerry M Chow, Jared Hertzberg, Easwar Magesan, and Sami Rosenblatt · 2018
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Quantum error correction with only two extra qubits
Rui Chao and Ben W Reichardt · 2018
Optimal layout synthesis for quantum computing
Bochen Tan and Jason Cong · 2020
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Flag fault-tolerant error correction for any stabilizer code
Rui Chao and Ben W Reichardt · 2020
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Ibm quantum breaks the 100-qubit processor barrier
Jerry Chow, Oliver Dial, and Jay Gambetta · 2021
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Floating tunable coupler for scalable quantum computing architectures
Eyob A Sete, Angela Q Chen, Riccardo Manenti, Shobhan Kulshreshtha, and Stefano Poletto · 2021
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Tunable coupling architecture for fixed-frequency transmon superconducting qubits
J Stehlik, DM Zajac, DL Underwood, T Phung, J Blair, S Carnevale, D Klaus, GA Keefe, A Carniol, Muir Kumph, et al · 2021
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Laser-annealing josephson junctions for yielding scaled-up superconducting quantum processors
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Cited alongside, same era.
Flag fault-tolerant error correction with arbitrary distance codes
Christopher Chamberland and Michael E Beverland · 2018
Cited alongside, same era.
PySAT: A Python toolkit for prototyping with SAT oracles
Alexey Ignatiev, Antonio Morgado, and Joao Marques-Silva · 2018
Cited alongside, same era.
An efficient methodology for mapping quantum circuits to the ibm qx architectures
Alwin Zulehner, Alexandru Paler, and Robert Wille · 2018
Cited alongside, same era.
Qubit allocation for noisy intermediate-scale quantum computers
Will Finigan, Michael Cubeddu, Thomas Lively, Johannes Flick, and Prineha Narang · 2018
Cited alongside, same era.
Fault-tolerant quantum computation with few qubits
Rui Chao and Ben W Reichardt · 2018
Cited alongside, same era.
Quantum supremacy using a programmable superconducting processor
Frank Arute, Kunal Arya, Ryan Babbush, Dave Bacon, Joseph C Bardin, Rami Barends, Rupak Biswas, Sergio Boixo, Fernando GSL Brandao, David A Buell, et al · 2019
Cited alongside, same era.
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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Fault-tolerant gates on hypergraph product codes
Anirudh Krishna and David Poulin · 2021
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Quantum information processing, quantum computing, and quantum error correction: an engineering approach
Ivan B Djordjevic · 2021
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Stim: a fast stabilizer circuit simulator
Craig Gidney · 2021
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Adapt: Mitigating idling errors in qubits via adaptive dynamical decoupling
Poulami Das, Swamit Tannu, Siddharth Dangwal, and Moinuddin Qureshi · 2021
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Time-optimal qubit mapping
Chi Zhang, Ari B Hayes, Longfei Qiu, Yuwei Jin, Yanhao Chen, and Eddy Z Zhang · 2021
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Logical-qubit operations in an error-detecting surface code
JF Marques, BM Varbanov, MS Moreira, Hany Ali, Nandini Muthusubramanian, Christos Zachariadis, Francesco Battistel, Marc Beekman, Nadia Haider, Wouter Vlothuizen, et al · 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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Qubit mapping and routing via maxsat
Abtin Molavi, Amanda Xu, Martin Diges, Lauren Pick, Swamit Tannu, and Aws Albarghouthi · 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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Incorporating multi-armed bandit with local search for maxsat
Jiongzhi Zheng, Kun He, Jianrong Zhou, Yan Jin, Chumin Li, and Felip Manyà · 2022
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Pymatching: A python package for decoding quantum codes with minimum-weight perfect matching
Oscar Higgott · 2022
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Constant-overhead quantum error correction with thin planar connectivity
Maxime A Tremblay, Nicolas Delfosse, and Michael E Beverland · 2022
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Real-time quantum error correction beyond break-even
VV Sivak, Alec Eickbusch, Baptiste Royer, Shraddha Singh, Ioannis Tsioutsios, Suhas Ganjam, Alessandro Miano, BL Brock, AZ Ding, Luigi Frunzio, et al · 2023
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A race track trapped-ion quantum processor
SA Moses, CH Baldwin, MS Allman, R Ancona, L Ascarrunz, C Barnes, J Bartolotta, B Bjork, P Blanchard, M Bohn, et al · 2023
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Codesign of quantum error-correcting codes and modular chiplets in the presence of defects
Sophia Fuhui Lin, Joshua Viszlai, Kaitlin N Smith, Gokul Subramanian Ravi, Charles Yuan, Frederic T Chong, and Benjamin J Brown · 2024
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