Energy-constrained LOCC-assisted quantum capacity of bosonic dephasing channel
Amir Arqand, Laleh Memarzadeh, Stefano Mancini

TL;DR
This paper investigates the energy-constrained LOCC-assisted quantum capacity of bosonic dephasing channels, deriving tight bounds and identifying optimal input states and squashing channels to improve understanding of quantum communication limits.
Contribution
It introduces new bounds for the energy-constrained LOCC-assisted quantum capacity of bosonic dephasing channels and characterizes optimal input states and squashing channels.
Findings
Optimal input state is diagonal in Fock basis.
Derived explicit upper and lower bounds for capacity.
Bounds are tight with at most 0.1 difference.
Abstract
We study the LOCC-assisted quantum capacity of bosonic dephasing channel with energy constraint on input states. We start our analysis by focusing on the energy-constrained squashed entanglement of the channel, which is an upper bound for the energy-constrained LOCC-assisted quantum capacity. As computing energy-constrained squashed entanglement of the channel is challenging due to a double optimization (over the set of density matrices and the isometric extensions of a squashing channel), we first derive an upper bound for it, and then we discuss how tight that bound is for energy-constrained LOCC-assisted quantum capacity of bosonic dephasing channel. We prove that the optimal input state is diagonal in the Fock basis. Furthermore, we prove that for a generic channel, the optimal squashing channel belongs to the set of symmetric quantum Markov chain inducer (SQMCI) channels of the…
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Taxonomy
TopicsQuantum Information and Cryptography · Quantum Computing Algorithms and Architecture · Quantum Mechanics and Applications
