Abstract

We establish several upper bounds on the energy-constrained quantum and private capacities of all single-mode phase-insensitive bosonic Gaussian channels. The first upper bound, which we call the ‘data-processing bound,’ is the simplest and is obtained by decomposing a phase-insensitive channel as a pure-loss channel followed by a quantum-limited amplifier channel. We prove that the data-processing bound can be at most 1.45 bits larger than a known lower bound on these capacities of the phase-insensitive Gaussian channel. We discuss another data-processing upper bound as well. Two other upper bounds, which we call the ‘ε-degradable bound’ and the ‘ε-close-degradable bound,’ are established using the notion of approximate degradability along with energy constraints. We find a strong limitation on any potential superadditivity of the coherent information of any phase-insensitive Gaussian channel in the low-noise regime, as the data-processing bound is very near to a known lower bound in such cases. We also find improved achievable rates of private communication through bosonic thermal channels, by employing coding schemes that make use of displaced thermal states. We end by proving that an optimal Gaussian input state for the energy-constrained, generalized channel divergence of two particular Gaussian channels is the two-mode squeezed vacuum state that saturates the energy constraint. What remains open for several interesting channel divergences, such as the diamond norm or the Rényi channel divergence, is to determine whether, among all input states, a Gaussian state is optimal.

Highlights

  • One of the main aims of quantum information theory is to characterize the capacities of quantum communication channels [Hol[12], Hay[06], Wil16]

  • We establish a third upper bound on the energy-constrained quantum capacity of a thermal channel using the idea of ε-close-degradability

  • We provide an upper bound on the energy-constrained quantum capacity of a thermal channel using the idea of ε-degradability

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Summary

15 June 2018

Any further distribution of We establish several upper bounds on the energy-constrained quantum and private capacities of all this work must maintain single-mode phase-insensitive bosonic Gaussian channels. We prove that the dataprocessing bound can be at most 1.45 bits larger than a known lower bound on these capacities of the phase-insensitive Gaussian channel. We discuss another data-processing upper bound as well. We end by proving that an optimal Gaussian input state for the energy-constrained, generalized channel divergence of two particular Gaussian channels is the two-mode squeezed vacuum state that saturates the energy constraint.

Introduction
Summary of results
Preliminaries
Quantum states and channels
Quantum thermal channel
3.14. Energy-constrained private capacity
11. Recent developments
13. Conclusion

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