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Encoding information redundantly using quantum error-correcting (QEC) codes allows one to overcome the inherent sensitivity to noise in quantum computers to ultimately achieve large-scale quantum computation.
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C. Chamberland and M. E. Beverland, Flag fault-tolerant error correction with arbitrary distance codes , Quantum
2018
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B. W. Reichardt, Fault-tolerant quantum error correction for Steane’s seven-qubit color code with few or no extra qubits , Quantum Sci. Technol
2020
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Google Quantum AI, Exponential suppression of bit or phase errors with cyclic error correction , Nature
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2022
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C. Ryan-Anderson, et al., Implementing Fault-tolerant Entangling Gates on the Five-qubit Code and the Color Code , arXiv eprint 2208.01863 (2022)
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Google Quantum AI, Suppressing quantum errors by scaling a surface code logical qubit , Nature
2023
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R. S. Gupta, et al., Encoding a magic state with beyond break-even fidelity , arXiv eprint 2305.13581 (2023)
2023
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D. H. Menendez, A. Ray, and M. Vasmer, Implementing fault-tolerant non-Clifford gates using the [[8,3,2]] color code , arXiv eprint 2309.08663 (2023)
2023
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Y. Wang, et al., Fault-Tolerant One-Bit Addition with the Smallest Interesting Colour Code , arXiv eprint 2309.09893 (2023)
2023
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D. Bluvstein, et al., Logical quantum processor based on reconfigurable atom arrays , arXiv eprint 2312.03982 (2023)
2023
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D. Zhu, et al., Interactive cryptographic proofs of quantumness using mid-circuit measurements , Nat. Phys
2023
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