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Further Reading: Chapter 22 — Why Quantum Error Correction Is Necessary: Decoherence, Gate Errors, and the Fragility of Quantum Information

  1. Nielsen, M. A., & Chuang, I. L. (2010). Quantum Computation and Quantum Information. Cambridge University Press. Chapters 8–9.
  2. Preskill, J. (1998). "Reliable quantum computers." Proceedings of the Royal Society A, 454(1969), 385–410.
  3. Aharonov, D., & Ben-Or, M. (1997). "Fault-tolerant quantum computation with constant error." STOC '97.
  4. Knill, E., Laflamme, R., & Zurek, W. H. (1998). "Resilient quantum computation." Science, 279(5349), 342–345.
  5. Kitaev, A. Y. (2003). "Fault-tolerant quantum computation by anyons." Annals of Physics, 303(1), 2–30.
  6. Terhal, B. M. (2015). "Quantum error correction for quantum memories." Reviews of Modern Physics, 87(2), 307.
  7. Devitt, S. J., Munro, W. J., & Nemoto, K. (2013). "Quantum error correction for beginners." Reports on Progress in Physics, 76(7), 076001.
  8. Qiskit Aer documentation: https://qiskit.github.io/qiskit-aer/
  9. Martinis, J. M. (2015). "Qubit metrology for building a fault-tolerant quantum computer." NPJ Quantum Information, 1, 15005.
  10. Barends, R., et al. (2014). "Superconducting quantum circuits at the surface code threshold for fault tolerance." Nature, 508, 500–503.
  11. Wootters, W. K., & Zurek, W. H. (1982). "A single quantum cannot be cloned." Nature, 299, 802–803.