Quantum network teleportation for quantum information distribution and concentration
arXiv:1211.0195 · doi:10.1103/PhysRevA.87.022302
Abstract
We investigate the schemes of quantum network teleportation for quantum information distribution and concentration which are essential in quantum cloud computation and quantum internet. In those schemes, the cloud can send simultaneously identical unknown quantum states to clients located in different places by a network like teleportation with a prior shared multipartite entangled state resource. The cloud first perform the quantum operation, each client can recover their quantum state locally by using the classical information announced by the cloud about the measurement result. The number of clients can be beyond the number of identical quantum states intentionally being sent, this quantum network teleportation can make sure that the retrieved quantum state is optimal. Furthermore, we present a scheme to realize its reverse process, which concentrates the states from the clients to reconstruct the original state of the cloud. These schemes facilitate the quantum information distribution and concentration in quantum networks in the framework of quantum cloud computation. Potential applications in time synchronization are discussed.
7 pages, 1 figure
References in corpus (7)
- Many-Body Physics with Ultracold Gases
- The Quantum Internet
- Experimental Demonstration of Blind Quantum Computing
- Asymptotic teleportation scheme as a universal programmable quantum processor
- Quantum phases with differing computational power
- Experimental Quantum Networking Protocols via Four-Qubit Hyperentangled Dicke States
- Experimental high fidelity six-photon entangled state for telecloning protocols
Cited by in corpus (7)
- Quantum Cloning Machines and the Applications
- Quantum-enhanced metrology for multiple phase estimation with noise
- A General Method for Selecting Quantum Channel for Bidirectional Controlled State Teleportation and Other Schemes of Controlled Quantum Communication
- Criterion on remote clocks synchronization within a Heisenberg scaling accuracy
- Approximate quantum state reconstruction without a quantum channel
- Probabilistic quantum cloning of N quantum states
- Design and Analysis of Communication Protocols using Quantum Resources