Trade-off capacities of the quantum Hadamard channels
arXiv:1001.1732 · doi:10.1103/PhysRevA.81.062312
Abstract
Coding theorems in quantum Shannon theory express the ultimate rates at which a sender can transmit information over a noisy quantum channel. More often than not, the known formulas expressing these transmission rates are intractable, requiring an optimization over an infinite number of uses of the channel. Researchers have rarely found quantum channels with a tractable classical or quantum capacity, but when such a finding occurs, it demonstrates a complete understanding of that channel's capabilities for transmitting classical or quantum information. Here, we show that the three-dimensional capacity region for entanglement-assisted transmission of classical and quantum information is tractable for the Hadamard class of channels. Examples of Hadamard channels include generalized dephasing channels, cloning channels, and the Unruh channel. The generalized dephasing channels and the cloning channels are natural processes that occur in quantum systems through the loss of quantum coherence or stimulated emission, respectively. The Unruh channel is a noisy process that occurs in relativistic quantum information theory as a result of the Unruh effect and bears a strong relationship to the cloning channels. We give exact formulas for the entanglement-assisted classical and quantum communication capacity regions of these channels. The coding strategy for each of these examples is superior to a naive time-sharing strategy, and we introduce a measure to determine this improvement.
27 pages, 6 figures, some slight refinements and submitted to Physical Review A
References in corpus (11)
- Correcting Quantum Errors with Entanglement
- Degenerate Quantum Codes for Pauli Channels
- Remote preparation of quantum states
- General entanglement-assisted quantum error-correcting codes
- Generalized remote state preparation: Trading cbits, qubits and ebits in quantum communication
- Relating quantum privacy and quantum coherence: an operational approach
- The structure of degradable quantum channels
- Remarks on the classical capacity of quantum channel
- Private information via the Unruh effect
- Efficient one- and two-qubit pulsed gates for an oscillator stabilized Josephson qubit
- Public and private communication with a quantum channel and a secret key
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