Superiority in dense coding through non-Markovian stochasticity

Fuente: arXiv
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Main Authors: Muhuri, Abhishek, Gupta, Rivu, Ghosh, Srijon, De, Aditi Sen
Format: Preprint
Published: 2022
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author Muhuri, Abhishek
Gupta, Rivu
Ghosh, Srijon
De, Aditi Sen
author_facet Muhuri, Abhishek
Gupta, Rivu
Ghosh, Srijon
De, Aditi Sen
contents We investigate the distributed dense coding (DC) protocol, involving multiple senders and a single or two receivers under the influence of non-Markovian noise, acting on the encoded qubits transmitted from senders to the receiver(s). We compare the effects of non-Markovianity on DC both for the dephasing and depolarising channels. In the case of dephasing channels, we illustrate that for some classes of states, high non-Markovian strength can eradicate the negative influence of noisy channels which is not observed for depolarizing noise. Furthermore, we incorporate randomness into the noise models by replacing the Pauli matrices with random unitaries and demonstrate the constructive impact of stochastic noise models on the quenched averaged dense coding capacity. Interestingly, we report that the detrimental effect of non-Markovian depolarising channels in the DC protocol can be eliminated when randomness is added to the channel.
format Preprint
id arxiv_https___arxiv_org_abs_2211_13057
institution arXiv
publishDate 2022
record_format arxiv
spellingShingle Superiority in dense coding through non-Markovian stochasticity
Muhuri, Abhishek
Gupta, Rivu
Ghosh, Srijon
De, Aditi Sen
Quantum Physics
We investigate the distributed dense coding (DC) protocol, involving multiple senders and a single or two receivers under the influence of non-Markovian noise, acting on the encoded qubits transmitted from senders to the receiver(s). We compare the effects of non-Markovianity on DC both for the dephasing and depolarising channels. In the case of dephasing channels, we illustrate that for some classes of states, high non-Markovian strength can eradicate the negative influence of noisy channels which is not observed for depolarizing noise. Furthermore, we incorporate randomness into the noise models by replacing the Pauli matrices with random unitaries and demonstrate the constructive impact of stochastic noise models on the quenched averaged dense coding capacity. Interestingly, we report that the detrimental effect of non-Markovian depolarising channels in the DC protocol can be eliminated when randomness is added to the channel.
title Superiority in dense coding through non-Markovian stochasticity
topic Quantum Physics
url https://arxiv.org/abs/2211.13057