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SU(2) Decomposition for the Quantum Information Dynamics in 2d-Partite Two-Level Quantum Systems

The gate array version of quantum computation uses logical gates adopting convenient forms for computational algorithms based on the algorithms classical computation. Two-level quantum systems are the basic elements connecting the binary nature of classical computation with the settlement of quantum...

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Autor principal: Delgado, Francisco
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7513136/
https://www.ncbi.nlm.nih.gov/pubmed/33265699
http://dx.doi.org/10.3390/e20080610
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author Delgado, Francisco
author_facet Delgado, Francisco
author_sort Delgado, Francisco
collection PubMed
description The gate array version of quantum computation uses logical gates adopting convenient forms for computational algorithms based on the algorithms classical computation. Two-level quantum systems are the basic elements connecting the binary nature of classical computation with the settlement of quantum processing. Despite this, their design depends on specific quantum systems and the physical interactions involved, thus complicating the dynamics analysis. Predictable and controllable manipulation should be addressed in order to control the quantum states in terms of the physical control parameters. Resources are restricted to limitations imposed by the physical settlement. This work presents a formalism to decompose the quantum information dynamics in [Formula: see text] for [Formula: see text]-partite two-level systems into [Formula: see text] [Formula: see text] quantum subsystems. It generates an easier and more direct physical implementation of quantum processing developments for qubits. Easy and traditional operations proposed by quantum computation are recovered for larger and more complex systems. Alternating the parameters of local and non-local interactions, the procedure states a universal exchange semantics on the basis of generalized Bell states. Although the main procedure could still be settled on other interaction architectures by the proper selection of the basis as natural grammar, the procedure can be understood as a momentary splitting of the [Formula: see text] information channels into [Formula: see text] pairs of 2 level quantum information subsystems. Additionally, it is a settlement of the quantum information manipulation that is free of the restrictions imposed by the underlying physical system. Thus, the motivation of decomposition is to set control procedures easily in order to generate large entangled states and to design specialized dedicated quantum gates. They are potential applications that properly bypass the general induced superposition generated by physical dynamics.
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spelling pubmed-75131362020-11-09 SU(2) Decomposition for the Quantum Information Dynamics in 2d-Partite Two-Level Quantum Systems Delgado, Francisco Entropy (Basel) Article The gate array version of quantum computation uses logical gates adopting convenient forms for computational algorithms based on the algorithms classical computation. Two-level quantum systems are the basic elements connecting the binary nature of classical computation with the settlement of quantum processing. Despite this, their design depends on specific quantum systems and the physical interactions involved, thus complicating the dynamics analysis. Predictable and controllable manipulation should be addressed in order to control the quantum states in terms of the physical control parameters. Resources are restricted to limitations imposed by the physical settlement. This work presents a formalism to decompose the quantum information dynamics in [Formula: see text] for [Formula: see text]-partite two-level systems into [Formula: see text] [Formula: see text] quantum subsystems. It generates an easier and more direct physical implementation of quantum processing developments for qubits. Easy and traditional operations proposed by quantum computation are recovered for larger and more complex systems. Alternating the parameters of local and non-local interactions, the procedure states a universal exchange semantics on the basis of generalized Bell states. Although the main procedure could still be settled on other interaction architectures by the proper selection of the basis as natural grammar, the procedure can be understood as a momentary splitting of the [Formula: see text] information channels into [Formula: see text] pairs of 2 level quantum information subsystems. Additionally, it is a settlement of the quantum information manipulation that is free of the restrictions imposed by the underlying physical system. Thus, the motivation of decomposition is to set control procedures easily in order to generate large entangled states and to design specialized dedicated quantum gates. They are potential applications that properly bypass the general induced superposition generated by physical dynamics. MDPI 2018-08-17 /pmc/articles/PMC7513136/ /pubmed/33265699 http://dx.doi.org/10.3390/e20080610 Text en © 2018 by the author. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Delgado, Francisco
SU(2) Decomposition for the Quantum Information Dynamics in 2d-Partite Two-Level Quantum Systems
title SU(2) Decomposition for the Quantum Information Dynamics in 2d-Partite Two-Level Quantum Systems
title_full SU(2) Decomposition for the Quantum Information Dynamics in 2d-Partite Two-Level Quantum Systems
title_fullStr SU(2) Decomposition for the Quantum Information Dynamics in 2d-Partite Two-Level Quantum Systems
title_full_unstemmed SU(2) Decomposition for the Quantum Information Dynamics in 2d-Partite Two-Level Quantum Systems
title_short SU(2) Decomposition for the Quantum Information Dynamics in 2d-Partite Two-Level Quantum Systems
title_sort su(2) decomposition for the quantum information dynamics in 2d-partite two-level quantum systems
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7513136/
https://www.ncbi.nlm.nih.gov/pubmed/33265699
http://dx.doi.org/10.3390/e20080610
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