Quantum information splitting of an arbitrary three‐qubit state by using three sets of GHZ states

Abstract Quantum Information Splitting is an important technique used in Quantum Communication where a sender has to comply with more than one recipient for quantum teleportation. We have shown that three sets of three‐qubit GHZ states can be used to realize the splitting of an arbitrary three‐qubit...

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Autores principales: Rajiuddin Sk, Tadasha Dash, Prasanta K. Panigrahi
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Lenguaje:EN
Publicado: Wiley 2021
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spelling oai:doaj.org-article:41b1ab92f27145f8860e367137471acc2021-11-22T16:30:52ZQuantum information splitting of an arbitrary three‐qubit state by using three sets of GHZ states2632-892510.1049/qtc2.12011https://doaj.org/article/41b1ab92f27145f8860e367137471acc2021-09-01T00:00:00Zhttps://doi.org/10.1049/qtc2.12011https://doaj.org/toc/2632-8925Abstract Quantum Information Splitting is an important technique used in Quantum Communication where a sender has to comply with more than one recipient for quantum teleportation. We have shown that three sets of three‐qubit GHZ states can be used to realize the splitting of an arbitrary three‐qubit state securely. We propose a scheme by a new quantum circuit and simulate them on the IBM quantum experience platform and conclude that an arbitrary three‐qubit state can be split up experimentally by using three GHZ states. In a way, the presented protocol is deterministic and secure against eavesdropping attacks.Rajiuddin SkTadasha DashPrasanta K. PanigrahiWileyarticleTelecommunicationTK5101-6720ENIET Quantum Communication, Vol 2, Iss 3, Pp 122-135 (2021)
institution DOAJ
collection DOAJ
language EN
topic Telecommunication
TK5101-6720
spellingShingle Telecommunication
TK5101-6720
Rajiuddin Sk
Tadasha Dash
Prasanta K. Panigrahi
Quantum information splitting of an arbitrary three‐qubit state by using three sets of GHZ states
description Abstract Quantum Information Splitting is an important technique used in Quantum Communication where a sender has to comply with more than one recipient for quantum teleportation. We have shown that three sets of three‐qubit GHZ states can be used to realize the splitting of an arbitrary three‐qubit state securely. We propose a scheme by a new quantum circuit and simulate them on the IBM quantum experience platform and conclude that an arbitrary three‐qubit state can be split up experimentally by using three GHZ states. In a way, the presented protocol is deterministic and secure against eavesdropping attacks.
format article
author Rajiuddin Sk
Tadasha Dash
Prasanta K. Panigrahi
author_facet Rajiuddin Sk
Tadasha Dash
Prasanta K. Panigrahi
author_sort Rajiuddin Sk
title Quantum information splitting of an arbitrary three‐qubit state by using three sets of GHZ states
title_short Quantum information splitting of an arbitrary three‐qubit state by using three sets of GHZ states
title_full Quantum information splitting of an arbitrary three‐qubit state by using three sets of GHZ states
title_fullStr Quantum information splitting of an arbitrary three‐qubit state by using three sets of GHZ states
title_full_unstemmed Quantum information splitting of an arbitrary three‐qubit state by using three sets of GHZ states
title_sort quantum information splitting of an arbitrary three‐qubit state by using three sets of ghz states
publisher Wiley
publishDate 2021
url https://doaj.org/article/41b1ab92f27145f8860e367137471acc
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