Quantum Error Correction
Herausgeber: Brun, Todd A.; Lidar, Daniel A.
Quantum Error Correction
Herausgeber: Brun, Todd A.; Lidar, Daniel A.
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Focusing on methods for quantum error correction, this book is invaluable for graduate students and experts in quantum information science.
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Focusing on methods for quantum error correction, this book is invaluable for graduate students and experts in quantum information science.
Hinweis: Dieser Artikel kann nur an eine deutsche Lieferadresse ausgeliefert werden.
Hinweis: Dieser Artikel kann nur an eine deutsche Lieferadresse ausgeliefert werden.
Produktdetails
- Produktdetails
- Verlag: Cambridge University Press
- Seitenzahl: 690
- Erscheinungstermin: 21. Oktober 2014
- Englisch
- Abmessung: 250mm x 175mm x 41mm
- Gewicht: 1352g
- ISBN-13: 9780521897877
- ISBN-10: 0521897874
- Artikelnr.: 37800478
- Herstellerkennzeichnung
- Books on Demand GmbH
- In de Tarpen 42
- 22848 Norderstedt
- info@bod.de
- 040 53433511
- Verlag: Cambridge University Press
- Seitenzahl: 690
- Erscheinungstermin: 21. Oktober 2014
- Englisch
- Abmessung: 250mm x 175mm x 41mm
- Gewicht: 1352g
- ISBN-13: 9780521897877
- ISBN-10: 0521897874
- Artikelnr.: 37800478
- Herstellerkennzeichnung
- Books on Demand GmbH
- In de Tarpen 42
- 22848 Norderstedt
- info@bod.de
- 040 53433511
Prologue
Preface
Part I. Background: 1. Introduction to decoherence and noise in open quantum systems Daniel Lidar and Todd Brun
2. Introduction to quantum error correction Dave Bacon
3. Introduction to decoherence-free subspaces and noiseless subsystems Daniel Lidar
4. Introduction to quantum dynamical decoupling Lorenza Viola
5. Introduction to quantum fault tolerance Panos Aliferis
Part II. Generalized Approaches to Quantum Error Correction: 6. Operator quantum error correction David Kribs and David Poulin
7. Entanglement-assisted quantum error-correcting codes Todd Brun and Min-Hsiu Hsieh
8. Continuous-time quantum error correction Ognyan Oreshkov
Part III. Advanced Quantum Codes: 9. Quantum convolutional codes Mark Wilde
10. Non-additive quantum codes Markus Grassl and Martin Rötteler
11. Iterative quantum coding systems David Poulin
12. Algebraic quantum coding theory Andreas Klappenecker
13. Optimization-based quantum error correction Andrew Fletcher
Part IV. Advanced Dynamical Decoupling: 14. High order dynamical decoupling Zhen-Yu Wang and Ren-Bao Liu
15. Combinatorial approaches to dynamical decoupling Martin Rötteler and Pawel Wocjan
Part V. Alternative Quantum Computation Approaches: 16. Holonomic quantum computation Paolo Zanardi
17. Fault tolerance for holonomic quantum computation Ognyan Oreshkov, Todd Brun and Daniel Lidar
18. Fault tolerant measurement-based quantum computing Debbie Leung
Part VI. Topological Methods: 19. Topological codes Héctor Bombín
20. Fault tolerant topological cluster state quantum computing Austin Fowler and Kovid Goyal
Part VII. Applications and Implementations: 21. Experimental quantum error correction Dave Bacon
22. Experimental dynamical decoupling Lorenza Viola
23. Architectures Jacob Taylor
24. Error correction in quantum communication Mark Wilde
Part VIII. Critical Evaluation of Fault Tolerance: 25. Hamiltonian methods in QEC and fault tolerance Eduardo Novais, Eduardo Mucciolo and Harold Baranger
26. Critique of fault-tolerant quantum information processing Robert Alicki
References
Index.
Preface
Part I. Background: 1. Introduction to decoherence and noise in open quantum systems Daniel Lidar and Todd Brun
2. Introduction to quantum error correction Dave Bacon
3. Introduction to decoherence-free subspaces and noiseless subsystems Daniel Lidar
4. Introduction to quantum dynamical decoupling Lorenza Viola
5. Introduction to quantum fault tolerance Panos Aliferis
Part II. Generalized Approaches to Quantum Error Correction: 6. Operator quantum error correction David Kribs and David Poulin
7. Entanglement-assisted quantum error-correcting codes Todd Brun and Min-Hsiu Hsieh
8. Continuous-time quantum error correction Ognyan Oreshkov
Part III. Advanced Quantum Codes: 9. Quantum convolutional codes Mark Wilde
10. Non-additive quantum codes Markus Grassl and Martin Rötteler
11. Iterative quantum coding systems David Poulin
12. Algebraic quantum coding theory Andreas Klappenecker
13. Optimization-based quantum error correction Andrew Fletcher
Part IV. Advanced Dynamical Decoupling: 14. High order dynamical decoupling Zhen-Yu Wang and Ren-Bao Liu
15. Combinatorial approaches to dynamical decoupling Martin Rötteler and Pawel Wocjan
Part V. Alternative Quantum Computation Approaches: 16. Holonomic quantum computation Paolo Zanardi
17. Fault tolerance for holonomic quantum computation Ognyan Oreshkov, Todd Brun and Daniel Lidar
18. Fault tolerant measurement-based quantum computing Debbie Leung
Part VI. Topological Methods: 19. Topological codes Héctor Bombín
20. Fault tolerant topological cluster state quantum computing Austin Fowler and Kovid Goyal
Part VII. Applications and Implementations: 21. Experimental quantum error correction Dave Bacon
22. Experimental dynamical decoupling Lorenza Viola
23. Architectures Jacob Taylor
24. Error correction in quantum communication Mark Wilde
Part VIII. Critical Evaluation of Fault Tolerance: 25. Hamiltonian methods in QEC and fault tolerance Eduardo Novais, Eduardo Mucciolo and Harold Baranger
26. Critique of fault-tolerant quantum information processing Robert Alicki
References
Index.
Prologue
Preface
Part I. Background: 1. Introduction to decoherence and noise in open quantum systems Daniel Lidar and Todd Brun
2. Introduction to quantum error correction Dave Bacon
3. Introduction to decoherence-free subspaces and noiseless subsystems Daniel Lidar
4. Introduction to quantum dynamical decoupling Lorenza Viola
5. Introduction to quantum fault tolerance Panos Aliferis
Part II. Generalized Approaches to Quantum Error Correction: 6. Operator quantum error correction David Kribs and David Poulin
7. Entanglement-assisted quantum error-correcting codes Todd Brun and Min-Hsiu Hsieh
8. Continuous-time quantum error correction Ognyan Oreshkov
Part III. Advanced Quantum Codes: 9. Quantum convolutional codes Mark Wilde
10. Non-additive quantum codes Markus Grassl and Martin Rötteler
11. Iterative quantum coding systems David Poulin
12. Algebraic quantum coding theory Andreas Klappenecker
13. Optimization-based quantum error correction Andrew Fletcher
Part IV. Advanced Dynamical Decoupling: 14. High order dynamical decoupling Zhen-Yu Wang and Ren-Bao Liu
15. Combinatorial approaches to dynamical decoupling Martin Rötteler and Pawel Wocjan
Part V. Alternative Quantum Computation Approaches: 16. Holonomic quantum computation Paolo Zanardi
17. Fault tolerance for holonomic quantum computation Ognyan Oreshkov, Todd Brun and Daniel Lidar
18. Fault tolerant measurement-based quantum computing Debbie Leung
Part VI. Topological Methods: 19. Topological codes Héctor Bombín
20. Fault tolerant topological cluster state quantum computing Austin Fowler and Kovid Goyal
Part VII. Applications and Implementations: 21. Experimental quantum error correction Dave Bacon
22. Experimental dynamical decoupling Lorenza Viola
23. Architectures Jacob Taylor
24. Error correction in quantum communication Mark Wilde
Part VIII. Critical Evaluation of Fault Tolerance: 25. Hamiltonian methods in QEC and fault tolerance Eduardo Novais, Eduardo Mucciolo and Harold Baranger
26. Critique of fault-tolerant quantum information processing Robert Alicki
References
Index.
Preface
Part I. Background: 1. Introduction to decoherence and noise in open quantum systems Daniel Lidar and Todd Brun
2. Introduction to quantum error correction Dave Bacon
3. Introduction to decoherence-free subspaces and noiseless subsystems Daniel Lidar
4. Introduction to quantum dynamical decoupling Lorenza Viola
5. Introduction to quantum fault tolerance Panos Aliferis
Part II. Generalized Approaches to Quantum Error Correction: 6. Operator quantum error correction David Kribs and David Poulin
7. Entanglement-assisted quantum error-correcting codes Todd Brun and Min-Hsiu Hsieh
8. Continuous-time quantum error correction Ognyan Oreshkov
Part III. Advanced Quantum Codes: 9. Quantum convolutional codes Mark Wilde
10. Non-additive quantum codes Markus Grassl and Martin Rötteler
11. Iterative quantum coding systems David Poulin
12. Algebraic quantum coding theory Andreas Klappenecker
13. Optimization-based quantum error correction Andrew Fletcher
Part IV. Advanced Dynamical Decoupling: 14. High order dynamical decoupling Zhen-Yu Wang and Ren-Bao Liu
15. Combinatorial approaches to dynamical decoupling Martin Rötteler and Pawel Wocjan
Part V. Alternative Quantum Computation Approaches: 16. Holonomic quantum computation Paolo Zanardi
17. Fault tolerance for holonomic quantum computation Ognyan Oreshkov, Todd Brun and Daniel Lidar
18. Fault tolerant measurement-based quantum computing Debbie Leung
Part VI. Topological Methods: 19. Topological codes Héctor Bombín
20. Fault tolerant topological cluster state quantum computing Austin Fowler and Kovid Goyal
Part VII. Applications and Implementations: 21. Experimental quantum error correction Dave Bacon
22. Experimental dynamical decoupling Lorenza Viola
23. Architectures Jacob Taylor
24. Error correction in quantum communication Mark Wilde
Part VIII. Critical Evaluation of Fault Tolerance: 25. Hamiltonian methods in QEC and fault tolerance Eduardo Novais, Eduardo Mucciolo and Harold Baranger
26. Critique of fault-tolerant quantum information processing Robert Alicki
References
Index.