4.7 Article

Quantum Random Access Codes Implementation for Resource Allocation and Coexistence with Classical Telecommunication

期刊

ADVANCED QUANTUM TECHNOLOGIES
卷 -, 期 -, 页码 -

出版社

WILEY
DOI: 10.1002/qute.202300162

关键词

high-dimensional qubit; quantum internet; quantum random access code; quantum resources; resource allocation

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This study investigates Quantum Random Access Codes (QRACs) by experimentally testing encoding and decoding strategies, as well as the resilience in the presence of noise. The results are significant for theoretical studies on quantum resource allocation and the implementation of quantum infrastructures coexisting with regular telecommunication networks.
In a world where Quantum Networks are rapidly becoming a reality, the development of the Quantum Internet is gaining increasing interest. Nevertheless, modern quantum networks are still in the early stages of development and have limited capacity to distribute resources among different users - a constraint that needs to be taken into account. In this work, it aims to investigate these constraints, using a novel setup for implementing Quantum Random Access Codes (QRACs), communication protocols known for their quantum advantage over their classical counterparts and semi- device-independent self-testing applications. The QRAC states, made for the first time using weak coherent pulses instead of entangled single photons, allow us to experimentally test the encoding and decoding strategy from the resource allocation perspective. Moreover, by emulating a coexistent classical communication, it test the resilience of the implementation in presence of noise. The achieved results represent a significant milestone both for theoretical studies of quantum resource allocation and for the implementation of quantum infrastructures capable of coexisting with regular telecommunication networks. For the first time, a setup capable of performing Quantum Random Access Code, a communication protocol known for showing quantum advantage, is implemented utilizing weak coherent pulses instead of real single photons. The results for 2 and 4D quantum states demonstrate an optimal allocation of quantum resources, a question of utmost importance in quantum networks and quantum internet.image

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