Affiliate disclosure
Book titles on this page link to Amazon. As an Amazon Associate, DataField.Dev earns from qualifying purchases — at no additional cost to you.
Further Reading: Chapter 22 — Why Quantum Error Correction Is Necessary: Decoherence, Gate Errors, and the Fragility of Quantum Information
- Nielsen, M. A., & Chuang, I. L. (2010). Quantum Computation and Quantum Information. Cambridge University Press. Chapters 8–9.
- Preskill, J. (1998). "Reliable quantum computers." Proceedings of the Royal Society A, 454(1969), 385–410.
- Aharonov, D., & Ben-Or, M. (1997). "Fault-tolerant quantum computation with constant error." STOC '97.
- Knill, E., Laflamme, R., & Zurek, W. H. (1998). "Resilient quantum computation." Science, 279(5349), 342–345.
- Kitaev, A. Y. (2003). "Fault-tolerant quantum computation by anyons." Annals of Physics, 303(1), 2–30.
- Terhal, B. M. (2015). "Quantum error correction for quantum memories." Reviews of Modern Physics, 87(2), 307.
- Devitt, S. J., Munro, W. J., & Nemoto, K. (2013). "Quantum error correction for beginners." Reports on Progress in Physics, 76(7), 076001.
- Qiskit Aer documentation: https://qiskit.github.io/qiskit-aer/
- Martinis, J. M. (2015). "Qubit metrology for building a fault-tolerant quantum computer." NPJ Quantum Information, 1, 15005.
- Barends, R., et al. (2014). "Superconducting quantum circuits at the surface code threshold for fault tolerance." Nature, 508, 500–503.
- Wootters, W. K., & Zurek, W. H. (1982). "A single quantum cannot be cloned." Nature, 299, 802–803.