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Active quantum error correction has been identified as a crucial ingredient of future quantum computers, motivating the recent experimental efforts to encode logical quantum bits using small topological codes.
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2009
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2010
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2010
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2010
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2011
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2011
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D. Hucul, I.V. Inlek, G. Vittorini, C. Crocker, S. Debnath, S. M. Clark, and C. Monroe, Modular Entanglement of Atomic Qubits using both Photons and Phonons
2015
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2015
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2016
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2016
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2016
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P. Maunz, High Optical Access Trap 2.0
2016
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2016
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2016
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H. Bombin, Dimensional jump in quantum error correction
2016
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G. Wendin, Quantum information processing with superconducting circuits: a review
2017
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2017
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2017
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N. M. Linke, M. Gutierrez, K. A. Landsman, C. Figgatt, S. Debnath, K. R. Brown, and C. Monroe, Fault-tolerant quantum error detection
2017
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B. Lekitsch, S. Weidt, A. G. Fowler, K. M�lmer, S. J. Devitt, C. Wunderlich, W. K. Hensinger, Blueprint for a microwave trapped-ion quantum computer
2017
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2017
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2017
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H. Kaufmann, T. Ruster, C. T. Schmiegelow, M. A. Luda, V. Kaushal, J. Schulz, D. von Lindenfels, F. Schmidt-Kaler, and U. G. Poschinger, Fast ion swapping for quantum-information processing
2017
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I. V. Inlek, C. Crocker, M. Lichtman, K. Sosnova, and C. Monroe, Multispecies Trapped-Ion Node for Quantum Networking
2017
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R. Chao, and B. W. Reichardt, Quantum error correction with only two extra qubits
2017
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2017
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M. Li, M. Gutierrez, S. E. David, A. Hernandez, and K. R. Brown, Fault tolerance with bare ancillary qubits for a [[7,1,3]] code
2017
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J. Combes, C. Granade, C. Ferrie, S. T. Flammia, Logical Randomized Benchmarking
2017
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2017
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