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Quantum Error Correction (QEC) is essential for future quantum computers due to its ability to exponentially suppress physical errors.
Concatenated quantum codes
Emanuel Knill and Raymond Laflamme. 1996 · 1996
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Exact performance of concatenated quantum codes
Benjamin Rahn, Andrew C Doherty, and Hideo Mabuchi. 2002 · 2002
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Universal quantum computation with ideal Clifford gates and noisy ancillas
Sergey Bravyi and Alexei Kitaev. 2005 · 2005
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Quantum memory hierarchies: Efficient designs to match available parallelism in quantum computing
Darshan D Thaker, Tzvetan S Metodi, Andrew W Cross, Isaac L Chuang, and Frederic T Chong. 2006 · 2006
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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 · 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 · 2013
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Using concatenated quantum codes for universal fault-tolerant quantum gates
Tomas Jochym-O’Connor and Raymond Laflamme. 2014 · 2014
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Optimal ancilla-free Clifford+ T approximation of z-rotations
Neil J Ross and Peter Selinger. 2014 · 2014
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Lattice surgery with a twist: simplifying clifford gates of surface codes
Daniel Litinski and Felix von Oppen. 2018 · 2018
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A game of surface codes: Large-scale quantum computing with lattice surgery
Daniel Litinski. 2019a · 2019
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Magic state distillation: Not as costly as you think
Daniel Litinski. 2019b · 2019
Cited alongside, same era.
Quantum low-density parity-check codes
Nikolas P Breuckmann and Jens Niklas Eberhardt. 2021 · 2021
Cited alongside, same era.
Assessing requirements to scale to practical quantum advantage
Michael E Beverland, Prakash Murali, Matthias Troyer, Krysta M Svore, Torsten Hoefler, Vadym Kliuchnikov, Guang Hao Low, Mathias Soeken, Aarthi Sundaram, and Alexander Vaschillo. 2022 · 2022
Cited alongside, same era.
Universal quantum computing with twist-free and temporally encoded lattice surgery
Christopher Chamberland and Earl T Campbell. 2022 · 2022
Cited alongside, same era.
Low-overhead fault-tolerant quantum computing using long-range connectivity
Lawrence Z Cohen, Isaac H Kim, Stephen D Bartlett, and Benjamin J Brown. 2022 · 2022
Cited alongside, same era.
Quantum error correction below the surface code threshold
Rajeev Acharya, Laleh Aghababaie-Beni, Igor Aleiner, Trond I Andersen, Markus Ansmann, Frank Arute, Kunal Arya, Abraham Asfaw, Nikita Astrakhantsev, Juan Atalaya, et al · 2024
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High-threshold and low-overhead fault-tolerant quantum memory
Sergey Bravyi, Andrew W Cross, Jay M Gambetta, Dmitri Maslov, Patrick Rall, and Theodore J Yoder. 2024 · 2024
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Linear-Size Ancilla Systems for Logical Measurements in QLDPC Codes
Andrew Cross, Zhiyang He, Patrick Rall, and Theodore Yoder. 2024 · 2024
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Magic state cultivation: growing T states as cheap as CNOT gates
Craig Gidney, Noah Shutty, and Cody Jones. 2024 · 2024
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Fault-tolerant logical measurements via homological measurement
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Building blocks of a flip-chip integrated superconducting quantum processor
Sandoko Kosen, Hang-Xi Li, Marcus Rommel, Daryoush Shiri, Christopher Warren, Leif Grönberg, Jaakko Salonen, Tahereh Abad, Janka Biznárová, Marco Caputo, et al · 2022
Cited alongside, same era.
Scaling superconducting quantum computers with chiplet architectures. In 2022 55th IEEE/ACM International Symposium on Microarchitecture (MICRO) . IEEE, 1092–1109
Kaitlin N Smith, Gokul Subramanian Ravi, Jonathan M Baker, and Frederic T Chong. 2022 · 2022
Cited alongside, same era.
Qasmbench: A low-level quantum benchmark suite for nisq evaluation and simulation
Ang Li, Samuel Stein, Sriram Krishnamoorthy, and James Ang. 2023 · 2023
Cited alongside, same era.
Hierarchical memories: Simulating quantum ldpc codes with local gates
Christopher A Pattison, Anirudh Krishna, and John Preskill. 2023 · 2023
Cited alongside, same era.
Fusion blossom: Fast mwpm decoders for qec. In 2023 IEEE International Conference on Quantum Computing and Engineering (QCE) , Vol. 1. IEEE, 928–938
Yue Wu and Lin Zhong. 2023 · 2023
Cited alongside, same era.
Benjamin Ide, Manoj G Gowda, Priya J Nadkarni, and Guillaume Dauphinais. 2024 · 2024
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Fault-Tolerant Logical Clifford Gates from Code Automorphisms
Hasan Sayginel, Stergios Koutsioumpas, Mark Webster, Abhishek Rajput, and Dan E Browne. 2024 · 2024
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Universal adapters between quantum LDPC codes
Esha Swaroop, Tomas Jochym-O’Connor, and Theodore J Yoder. 2024 · 2024
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Low-overhead fault-tolerant quantum computation by gauging logical operators
Dominic J Williamson and Theodore J Yoder. 2024 · 2024
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Constant-overhead fault-tolerant quantum computation with reconfigurable atom arrays
Qian Xu, J Pablo Bonilla Ataides, Christopher A Pattison, Nithin Raveendran, Dolev Bluvstein, Jonathan Wurtz, Bane Vasić, Mikhail D Lukin, Liang Jiang, and Hengyun Zhou. 2024 · 2024
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