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Recently, usage of detecting regions facilitated the discovery of new circuits for fault-tolerantly implementing the surface code.
“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
Earlier work this paper cites.
“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, A. Dunsworth, A. Fowler, B. Foxen, C. Gidney, M. Giustina, R. Graff, T. Huang, E. Jeffrey, Erik Lucero, J. Y. Mutus, O. Naaman, C. Neill, C. Quintana, P. Roushan, Daniel Sank, A. Vainsencher, J. Wenner, T. C. White, S. Boixo, R. Babbush, V. N. Smelyanskiy, H. Neven, and John M. Martinis · 2018
Earlier work this paper cites.
“Measurement based fault tolerance beyond foliation” (2018)
Naomi Nickerson and Héctor Bombín · 2018
Earlier work this paper cites.
“Quantum supremacy using a programmable superconducting processor”
Google Quantum AI · 2019
Earlier work this paper cites.
“Generating Fault-Tolerant Cluster States from Crystal Structures”
Michael Newman, Leonardo Andreta de Castro, and Kenneth R. Brown · 2020
Earlier work this paper cites.
“Quantum computing enhanced computational catalysis”
Vera von Burg, Guang Hao Low, Thomas Häner, Damian S. Steiger, Markus Reiher, Martin Roetteler, and Matthias Troyer · 2021
Earlier work this paper cites.
“Even more efficient quantum computations of chemistry through tensor hypercontraction”
Joonho Lee, Dominic W. Berry, Craig Gidney, William J. Huggins, Jarrod R. McClean, Nathan Wiebe, and Ryan Babbush · 2021
Earlier work this paper cites.
“Strong quantum computational advantage using a superconducting quantum processor”
Yulin Wu, Wan-Su Bao, Sirui Cao, Fusheng Chen, Ming-Cheng Chen, Xiawei Chen, Tung-Hsun Chung, Hui Deng, Yajie Du, Daojin Fan, Ming Gong, Cheng Guo, Chu Guo, Shaojun Guo, Lianchen Han, Linyin Hong, He-Liang Huang, Yong-Heng Huo, Liping Li, Na Li, Shaowei Li, Yuan Li, Futian Liang, Chun Lin, Jin Lin, Haoran Qian, Dan Qiao, Hao Rong, Hong Su, Lihua Sun, Liangyuan Wang, Shiyu Wang, Dachao Wu, Yu Xu, Kai Yan, Weifeng Yang, Yang Yang, Yangsen Ye, Jianghan Yin, Chong Ying, Jiale Yu, Chen Zha, Cha Zhang, Haibin Zhang, Kaili Zhang, Yiming Zhang, Han Zhao, Youwei Zhao, Liang Zhou, Qingling Zhu, Chao-Yang Lu, Cheng-Zhi Peng, Xiaobo Zhu, and Jian-Wei Pan · 2021
Earlier work this paper cites.
“A Fault-Tolerant Honeycomb Memory”
Craig Gidney, Michael Newman, Austin Fowler, and Michael Broughton · 2021
Earlier work this paper cites.
“Subsystem codes with high thresholds by gauge fixing and reduced qubit overhead”
Oscar Higgott and Nikolas P. Breuckmann · 2021
Earlier work this paper cites.
“Dynamically Generated Logical Qubits”
Matthew B. Hastings and Jeongwan Haah · 2021
Earlier work this paper cites.
“Fault-tolerant resource estimate for quantum chemical simulations: Case study on li-ion battery electrolyte molecules”
Isaac H. Kim, Ye-Hua Liu, Sam Pallister, William Pol, Sam Roberts, and Eunseok Lee · 2022
Cited alongside, same era.
“Quantum computational advantage via 60-qubit 24-cycle random circuit sampling”
Qingling Zhu, Sirui Cao, Fusheng Chen, Ming-Cheng Chen, Xiawei Chen, Tung-Hsun Chung, Hui Deng, Yajie Du, Daojin Fan, Ming Gong, et al · 2022
Cited alongside, same era.
“Stability Experiments: The Overlooked Dual of Memory Experiments”
Craig Gidney · 2022
Cited alongside, same era.
“Benchmarking the Planar Honeycomb Code”
Craig Gidney, Michael Newman, and Matt McEwen · 2022
Cited alongside, same era.
“Quantum simulation of battery materials using ionic pseudopotentials”
Modjtaba Shokrian Zini, Alain Delgado, Roberto dos Reis, Pablo Antonio Moreno Casares, Jonathan E. Mueller, Arne-Christian Voigt, and Juan Miguel Arrazola · 2023
Cited alongside, same era.
“Improved quantum error correction with randomized compiling”
Aditya Jain, Pavithran Iyer, Stephen D. Bartlett, and Joseph Emerson · 2023
Later among the works it cites.
“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
Closest in time.
“Improved Pairwise Measurement-Based Surface Code”
Linnea Grans-Samuelsson, Ryan V. Mishmash, David Aasen, Christina Knapp, Bela Bauer, Brad Lackey, Marcus P. da Silva, and Parsa Bonderson · 2024
Closest in time.
“Leakage mobility in superconducting qubits as a leakage reduction unit” (2024)
Joan Camps, Ophelia Crawford, György P. Gehér, Alexander V. Gramolin, Matthew P. Stafford, and Mark Turner · 2024
Closest in time.
“Resources for "luci in the surface code with defects"” (2024)
Dripto M. Debroy · 2024
Closest in time.
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“Fault-tolerant quantum simulation of materials using bloch orbitals”
Nicholas C. Rubin, Dominic W. Berry, Fionn D. Malone, Alec F. White, Tanuj Khattar, A. Eugene DePrince, Sabrina Sicolo, Michael Küehn, Michael Kaicher, Joonho Lee, and Ryan Babbush · 2023
Cited alongside, same era.
“Relaxing Hardware Requirements for Surface Code Circuits using Time-dynamics”
Matt McEwen, Dave Bacon, and Craig Gidney · 2023
Cited alongside, same era.
“Quantum computing is scalable on a planar array of qubits with fabrication defects”
Armands Strikis, Simon C. Benjamin, and Benjamin J. Brown · 2023
Cited alongside, same era.
“Adaptive surface code for quantum error correction in the presence of temporary or permanent defects”
Adam Siegel, Armands Strikis, Thomas Flatters, and Simon Benjamin · 2023
Cited alongside, same era.
“Randomized compiling in fault-tolerant quantum computation” (2023)
Stefanie J. Beale and Joel J. Wallman · 2023
Cited alongside, same era.
Noah Shutty, Michael Newman, and Benjamin Villalonga · 2024
Closest in time.
“Improved accuracy for decoding surface codes with matching synthesis” (2024)
Cody Jones · 2024
Closest in time.
“Error correction in dynamical codes” (2024)
Xiaozhen Fu and Daniel Gottesman · 2024
Closest in time.
“Low-overhead defect-adaptive surface code with bandage-like super-stabilizers”
Zuolin Wei, Tan He, Yangsen Ye, Dachao Wu, Yiming Zhang, Youwei Zhao, Weiping Lin, He-Liang Huang, Xiaobo Zhu, and Jian-Wei Pan · 2025
Closest in time.
“Lowering connectivity requirements for bivariate bicycle codes using morphing circuits” (2025)
Mackenzie H. Shaw and Barbara M. Terhal · 2025
Closest in time.