<p>In the realm of multi-agent systems (MAS), communication delays emerge as a pivotal challenge, hindering efficient information exchange and synchronization among agents. This research proposes a novel framework leveraging quantum mechanics to address these delays and revolutionize agent interaction dynamics. The study investigates the application of quantum telecommunication and quantum computing technologies within a wireless multi-agent system (MAS) consisting of four agents. Three communication topologies star, mesh, and ring are explored. Quantum teleportation is utilized to enable state transfer between agents by encoding quantum information onto photons using properties such as polarization or phase. In quantum communication, the concept of discrete energy levels in atoms plays a crucial role in facilitating secure and efficient information exchange. These photons are transmitted through free-space optical channels, a form of wireless communication, thereby mitigating communication delays. Additionally, Quantum Key Distribution (QKD) provides unbreakable encryption, ensuring secure information exchange across the network. By integrating these technologies, this work addresses challenges such as noise, decoherence, and infrastructure limitations, demonstrating the potential of quantum telecommunication to transform wireless communication systems. While still in the early stages of development, quantum communication networks have been demonstrated using fiber optic cables and satellites, offering the potential for ultra-secure, long-distance communication. These advancements hold promise for applications in fields such as finance, healthcare, and national security. The integration of quantum telecommunication enables state transfer between agents, reducing communication delays and facilitating instantaneous information exchange by encoding quantum information onto photons using properties like polarization or phase. The findings contribute to the growing body of knowledge in quantum communication and lay the foundation for practical applications of quantum computing in complex systems. By addressing challenges related to scalability, noise resilience, and wireless implementation, this research advances the understanding of quantum technologies and their potential to enhance coordination, security, and efficiency in real-world multi-agent networks.</p>

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Application of quantum telecommunication in multi-agent system

  • Stefalo Acha,
  • Sun Yi

摘要

In the realm of multi-agent systems (MAS), communication delays emerge as a pivotal challenge, hindering efficient information exchange and synchronization among agents. This research proposes a novel framework leveraging quantum mechanics to address these delays and revolutionize agent interaction dynamics. The study investigates the application of quantum telecommunication and quantum computing technologies within a wireless multi-agent system (MAS) consisting of four agents. Three communication topologies star, mesh, and ring are explored. Quantum teleportation is utilized to enable state transfer between agents by encoding quantum information onto photons using properties such as polarization or phase. In quantum communication, the concept of discrete energy levels in atoms plays a crucial role in facilitating secure and efficient information exchange. These photons are transmitted through free-space optical channels, a form of wireless communication, thereby mitigating communication delays. Additionally, Quantum Key Distribution (QKD) provides unbreakable encryption, ensuring secure information exchange across the network. By integrating these technologies, this work addresses challenges such as noise, decoherence, and infrastructure limitations, demonstrating the potential of quantum telecommunication to transform wireless communication systems. While still in the early stages of development, quantum communication networks have been demonstrated using fiber optic cables and satellites, offering the potential for ultra-secure, long-distance communication. These advancements hold promise for applications in fields such as finance, healthcare, and national security. The integration of quantum telecommunication enables state transfer between agents, reducing communication delays and facilitating instantaneous information exchange by encoding quantum information onto photons using properties like polarization or phase. The findings contribute to the growing body of knowledge in quantum communication and lay the foundation for practical applications of quantum computing in complex systems. By addressing challenges related to scalability, noise resilience, and wireless implementation, this research advances the understanding of quantum technologies and their potential to enhance coordination, security, and efficiency in real-world multi-agent networks.