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https://doi.org/10.1088/1367-2630/18/6/063005
Title: | Assessing the performance of quantum repeaters for all phase-insensitive Gaussian bosonic channels | Authors: | Goodenough, K Elkouss, D Wehner, S |
Keywords: | Bosons Channel capacity Communication channels (information theory) Quantum cryptography Quantum entanglement Quantum optics private capacity Quantum Information Quantum repeaters Secret key Squashed entanglement Quantum communication |
Issue Date: | 2016 | Publisher: | Institute of Physics Publishing | Citation: | Goodenough, K, Elkouss, D, Wehner, S (2016). Assessing the performance of quantum repeaters for all phase-insensitive Gaussian bosonic channels. New Journal of Physics 18 (6) : 63005. ScholarBank@NUS Repository. https://doi.org/10.1088/1367-2630/18/6/063005 | Rights: | Attribution 4.0 International | Abstract: | One of the most sought-after goals in experimental quantum communication is the implementation of a quantum repeater. The performance of quantum repeaters can be assessed by comparing the attained rate with the quantum and private capacity of direct transmission, assisted by unlimited classical two-way communication. However, these quantities are hard to compute, motivating the search for upper bounds. Takeoka, Guha and Wilde found the squashed entanglement of a quantum channel to be an upper bound on both these capacities. In general it is still hard to find the exact value of the squashed entanglement of a quantum channel, but clever sub-optimal squashing channels allow one to upper bound this quantity, and thus also the corresponding capacities. Here, we exploit this idea to obtain bounds for any phase-insensitive Gaussian bosonic channel. This bound allows one to benchmark the implementation of quantum repeaters for a large class of channels used to model communication across fibers. In particular, our bound is applicable to the realistic scenario when there is a restriction on the mean photon number on the input. Furthermore, we show that the squashed entanglement of a channel is convex in the set of channels, and we use a connection between the squashed entanglement of a quantum channel and its entanglement assisted classical capacity. Building on this connection, we obtain the exact squashed entanglement and two-way assisted capacities of the d-dimensional erasure channel and bounds on the amplitude-damping channel and all qubit Pauli channels. In particular, our bound improves on the previous best known squashed entanglement upper bound of the depolarizing channel. © 2016 IOP Publishing Ltd and Deutsche Physikalische Gesellschaft. | Source Title: | New Journal of Physics | URI: | https://scholarbank.nus.edu.sg/handle/10635/179568 | ISSN: | 1367-2630 | DOI: | 10.1088/1367-2630/18/6/063005 | Rights: | Attribution 4.0 International |
Appears in Collections: | Elements Staff Publications |
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