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Published in: Quantum Information Processing 11/2023

01-11-2023

Hybrid bidirectional quantum communication protocol of two single-qubit states under noisy channels with memory

Authors: Manoj Kumar Mandal, Binayak S. Choudhury, Soumen Samanta

Published in: Quantum Information Processing | Issue 11/2023

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Abstract

In this paper, we discuss a protocol for remote preparation and transfer of a known and an unknown state between two parties, respectively. It is a bidirectional hybrid protocol consisting of teleportation from one end and remote state preparation from the other end. Firstly, we describe a protocol for the above purpose using a five-qubit pure entangled state as a quantum channel. After that, we consider the effect of correlated Pauli noise on the protocol. Particularly, we consider bit-flip noise, bit-phase-flip noise, phase-damping noise, depolarizing noise and two-Pauli noise, all of which are with memory. We present an analysis of the fidelity with variations of certain involved parameters. Our findings qualitatively agree with the finding of several existing works that fidelity can be improved if the correlation parameter can be properly chosen. Also, we construct a quantum circuit for the preparation of our quantum resource and execute the circuit on IBM qasm simulator.

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Metadata
Title
Hybrid bidirectional quantum communication protocol of two single-qubit states under noisy channels with memory
Authors
Manoj Kumar Mandal
Binayak S. Choudhury
Soumen Samanta
Publication date
01-11-2023
Publisher
Springer US
Published in
Quantum Information Processing / Issue 11/2023
Print ISSN: 1570-0755
Electronic ISSN: 1573-1332
DOI
https://doi.org/10.1007/s11128-023-04165-0

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