Are there basic laws of quantum information processing?
arXiv:quant-ph/9705003 · doi:10.1016/S0375-9601(98)00408-3
Abstract
We prove within the standard quantum formalism without reduction postulate that the no-cloning theorem and the principle of no-increasing of entanglement under local actions and one-way classical communication are equivalent. We argue that the result is a manifestation of more general principles governing quantum information processing analogous to the thermodynamical laws.
RevTeX, 16 pages, the proof of the theorem has been written mathematically; the possible interpretation of the result (basing on the analogy with thermodynamics) has been added; the previous discussion has been removed
References in corpus (8)
- Quantifying Entanglement
- Entanglement Measures and Purification Procedures
- Mixed-state entanglement and distillation: is there a ``bound'' entanglement in nature?
- Optimal Quantum Cloning Machines
- Capacities of Quantum Erasure Channels
- Quantum copying: A network
- Broadcasting of entanglement via local copying
- Entanglement purification via separable superoperators
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- Mixed-state entanglement and distillation: is there a ``bound'' entanglement in nature?
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- A new type of complementarity between quantum and classical information
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- Common origin of no-cloning and no-deleting principles - Conservation of information
- Dynamics of Global Entanglement under Decoherence
- Information-Theoretic Measure of Genuine Multi-Qubit Entanglement
- On balance of information in bipartite quantum communication systems: entanglement-energy analogy
- Entanglement Theory and the Quantum Simulation of Many-Body Physics
- Environment Induced Bipartite Entanglement
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- Eavesdropper's Optimal Information in Variations of Bennett-Brassard 1984 Quantum Key Distribution in the Coherent Attacks
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- Binary Black Hole Information Loss Paradox & Future Prospects
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- Fully multi-qubit entangled states