The Physics of Quantum Information: Complementarity, Uncertainty, and Entanglement
arXiv:1212.2379 · doi:10.1142/S0219749913300027
Abstract
The overarching goal of this thesis is to demonstrate that complementarity is at the heart of quantum information theory, that it allows us to make (some) sense of just what information "quantum information" refers to, and that it is useful in understanding and constructing quantum information processing protocols. The detailed research results which form the basis of these claims are to be found in the included papers, and the aim here is to present an overview comprehensible to a more general audience.
80 pages, Habilitation thesis, TU Darmstadt, 2011
References in corpus (22)
- Distillation of secret key and entanglement from quantum states
- Tight Finite-Key Analysis for Quantum Cryptography
- Quantum information can be negative
- Coding Theorem and Strong Converse for Quantum Channels
- The Uncertainty Relation for Smooth Entropies
- Post-selection technique for quantum channels with applications to quantum cryptography
- Leftover Hashing Against Quantum Side Information
- One-Shot Classical-Quantum Capacity and Hypothesis Testing
- Conjectured Strong Complementary Information Tradeoff
- Noisy channel coding via privacy amplification and information reconciliation
- Uncertainty, Monogamy, and Locking of Quantum Correlations
- Information theoretic treatment of tripartite systems and quantum channels
- A Generic Security Proof for Quantum Key Distribution
- One-Shot Classical Data Compression with Quantum Side Information and the Distillation of Common Randomness or Secret Keys
- Spherical Code Key Distribution Protocols for Qubits
- Physical Underpinnings of Privacy
- Generalized decoding, effective channels, and simplified security proofs in quantum key distribution
- Noisy Preprocessing and the Distillation of Private States
- Approximate quantum error correction, random codes, and quantum channel capacity
- Complementarity of Private and Correctable Subsystems in Quantum Cryptography and Error Correction
- Duality of privacy amplification against quantum adversaries and data compression with quantum side information
- Complementarity, distillable secret key, and distillable entanglement