HWDSQP:一种提高通信可靠性的历史加权动态调度量子协议

IF 17.2
Liwei Lin;Rongbo Ma;Zejian Wang;Zinuo Cai;Haochen Xu;Baoheng Zhang;Ruhui Ma;Rajkumar Buyya
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引用次数: 0

摘要

量子计算有望解决经典计算机难以解决的问题。然而,我们仍然处于嘈杂的中等规模量子(NISQ)计算机时代,需要建立有效的分布式量子通信协议,将复杂的量子计算任务分布在不同的量子计算机上执行。量子通信技术取得了重大进展,特别是在量子路径创建和资源调度方面。量子路径的建立依赖于量子纠缠和量子中继技术,通过多个中继之间的纠缠交换实现远距离、高保真的量子态传输。然而,量子通信网络中的资源有限且昂贵,因此有效的资源调度策略对于提高整体网络效率至关重要。为了解决这些问题,我们设计了一个包含历史加权保真路由(HWFR)算法和动态多优先级量子调度(DMPQS)算法的网络协议,以提高量子计算机之间的通信可靠性。两种算法都旨在提高量子链路的可靠性,优化资源利用,适应链路的动态变化。前者通过考虑链路长度、噪声水平、纠缠成功率、量子中继资源约束等因素动态选择最优路径,保证了量子通信的高保真度和可靠性。后者根据量子业务请求的紧急程度和保真度需求动态调整请求优先级,优化资源利用率。实验结果表明,该协议在请求的平均响应时间和链路利用率方面具有优异的性能,有效地提高了网络资源的利用效率和系统的整体性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
HWDSQP: A Historical Weighted and Dynamic Scheduling Quantum Protocol to Enhance Communication Reliability
Quantum computing holds the promise of solving problems difficult for classical computers. However, we are still in the era of Noisy Intermediate-Scale Quantum (NISQ) computers, necessary to establish effective distributed quantum communication protocols to distribute complex quantum computing tasks across different quantum computers for execution. Significant progress has been made in quantum communication technology, particularly in quantum path creation and resource scheduling. The establishment of quantum paths relies on quantum entanglement and quantum relay technologies, achieving long-distance, high-fidelity quantum state transmission through entanglement swapping between multiple relays. However, resources in quantum communication networks are limited and expensive, making efficient resource scheduling strategies crucial for improving overall network efficiency. To address these issues, we design a network protocol that includes the Historical Weighted Fidelity Routing (HWFR) algorithm and the Dynamic Multi-Priority Quantum Scheduling (DMPQS) algorithm to enhance communication reliability across quantum computers. Both algorithms aim to enhance the reliability of quantum links, optimize resource utilization, and adapt to dynamic changes in the links. The former algorithm dynamically selects the optimal path by considering factors such as link length, noise level, entanglement success rate, and quantum relay resource constraints, ensuring high-fidelity and reliable quantum communication. The latter dynamically adjusts request priorities based on the urgency of quantum service requests and fidelity requirements, optimizing resource utilization. Experimental results show that the proposed protocol performs excellently in terms of an average response time of requests and link utilization, effectively improving the utilization efficiency of network resources and the overall performance of the system.
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