Multi-Agent RL based User-Centric Spectrum Allocation Scheme in D2D Enabled Hetnets

Kamran Zia, N. Javed, Muhammad Nadeem Sial, Sohail Ahmed, Farrukh Pervez
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引用次数: 7

Abstract

Device to device (D2D) communication technology is widely considered in 5G for providing higher data rates and increase network capacity. The performance benefits of D2D communication are best achieved if it takes place in shared mode in which it reuses the spectrum being utilized by conventional cellular users. This induces significant challenges in allocating resources because of severe interference among D2D and cellular users. Moreover, centralized resource allocation techniques proposed in literature for D2D users can no longer be practical in dense heterogeneous networks considered for 5G. In this paper, we present a distributed learning based spectrum allocation scheme in which D2D users learn the environment and autonomously select spectrum resources to maximize their Throughput and Spectral Efficiency (SE) while caus- ing minimum interference to the cellular users. We have employed distributed learning in a stochastic geometry based realistic network. Our evaluation results show that the employed learning scheme enables users to achieve high Throughput and Spectral Efficiency while meeting QoS requirements of macro and femto tier.
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D2D网络中基于多agent RL的以用户为中心的频谱分配方案
设备到设备(D2D)通信技术在5G中被广泛考虑,以提供更高的数据速率和增加网络容量。D2D通信的性能优势最好是在共享模式下实现的,在共享模式下,D2D通信重用了传统蜂窝用户使用的频谱。由于D2D和蜂窝用户之间的严重干扰,这给资源分配带来了重大挑战。此外,文献中针对D2D用户提出的集中资源分配技术在考虑5G的密集异构网络中已不再适用。在本文中,我们提出了一种基于分布式学习的频谱分配方案,其中D2D用户学习环境并自主选择频谱资源,以最大限度地提高其吞吐量和频谱效率(SE),同时对蜂窝用户造成最小的干扰。我们在基于随机几何的现实网络中采用了分布式学习。我们的评估结果表明,所采用的学习方案可以使用户在满足宏层和飞层QoS要求的同时获得较高的吞吐量和频谱效率。
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