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Multi-objective Hybrid Scheduler enabling Efficient Resource Management for 5G UDN

机译:多目标混合调度程序,可为5G UDN进行有效的资源管理

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Scheduling algorithms allocate radio resources to optimize network efficiency with respect to some competing performance metrics. Common schedulers include the Round Robin (RR), Proportional Fair (PF) and the Best Channel Quality Indicator (Best CQI) schedulers, as well as their different variants, modified or hybrid versions. RR promotes fairness, Best CQI targets increased throughput while PF guarantees a balance in the fairness and throughput objectives of the network. In this paper, we propose a multi-objective hybrid scheduler (MOHS), a hybrid of RR and Best CQI schedulers, that adapts the scheduling policy by toggling between RR and Best CQI schedulers to optimize system performance. The results show that the proposed scheduler provides higher spectral efficiency, energy efficiency and area network capacity than RR and PF, as well as significantly higher fairness than the Best CQI scheduler. By improving multiple system objectives, MOHS enables efficient radio resource allocation that optimizes the network efficiency for ultra-dense 5G networks and beyond.
机译:调度算法分配无线电资源以相对于某些竞争性能指标优化网络效率。常见的调度程序包括循环调度(RR),比例公平(PF)和最佳信道质量指标(Best CQI)调度程序,以及它们的不同变体,修改版本或混合版本。 RR促进了公平性,最佳CQI旨在提高吞吐量,而PF则保证了网络公平性和吞吐量目标之间的平衡。在本文中,我们提出了一种多目标混合调度器(MOHS),它是RR和Best CQI调度器的混合,通过在RR和Best CQI调度器之间切换来调整调度策略以优化系统性能。结果表明,所提出的调度器比RR和PF具有更高的频谱效率,能效和区域网络容量,并且比Best CQI调度器具有更高的公平性。通过改善多个系统目标,MOHS可以实现高效的无线电资源分配,从而优化超密集5G网络及更高网络的网络效率。

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