Suppressing correlated noise in signals transmitted over the Gaussian memory channels using -port splitter and phase flips
arXiv:1407.0653 · doi:10.1103/PhysRevA.90.052320
Abstract
A scheme for suppressing the correlated noise in signals transmitted over the bosonic Gaussian memory channels is proposed. This is a compromise solution rather than removing the noise completely. The scheme is based on linear optical elements, two -port splitters and number of phase flips. The proposed scheme has the advantages that the correlated noise of the memory channels are greatly suppressed, and the input signal states can be protected excellently when transmitting over the noise channels. We examine the suppressing efficiency of the scheme for the correlated noise, both from quantum information of the states directly transmitted through the noise channel and also from the entanglement teleportation. The phase flips are very important aspects for the suppressions of the correlated noise, which transform the roles of the memory factor from completely negative to positive in quantum information communications. Increasing the number of beam splitters also can improve the suppressing efficiency of the scheme in communications.
10 pages, 23 figures. Accepted version, accepted for publication in Phys. Rev. A
References in corpus (10)
- Symplectic invariants, entropic measures and correlations of Gaussian states
- Quantifying decoherence in continuous variable systems
- Experimental demonstration of entanglement-enhanced classical communication over a quantum channel with correlated noise
- Quantum Capacity of a dephasing channel with memory
- Coding Theorem for a Class of Quantum Channels with Long-Term Memory
- Many-body quantum dynamics of polarisation squeezing in optical fibre
- Quantum fidelity for Gaussian states describing the evolution of open systems
- On the transitional behavior of quantum Gaussian memory channels
- Effects of imperfect noise correlations on decoherence-free subsystems: SU(2) diffusion model
- The fidelity of general bosonic channels with pure state input