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Adaptive Biasing Cell Association in FFR Aided Multi-tier Heterogeneous Networks under Dynamic Load Variation

机译:在动态负载变化下FFR辅助多层异构网络中的自适应偏置细胞关联

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Heterogeneous networks (HetNets) adopting fractional frequency reuse (FFR) improves cell coverage, network capacity, efficiency, assures higher data rates, and better quality of service (QoS) for next generation wireless networks. However they fail to handle dynamic load variation. So we attempt biasing cell association (BCA) to offload user from macrocell to small cell base stations (SCBs) to overcome capacity reduction and throughput degradation. It is based on range expansion of SCBSs by adding a positive bias to the reference signal received power (RSRP). In this paper we propose a FFR aided twin layer HetNet with an adaptive biasing scheme for load balancing. For users offloading a cell is selected by self-organizing network (SON) with adaptive bias value using Q-learning algorithm. Simulation result show that our system model can handle dynamic load variation with proper utilization of available bandwidth and mitigate interference better than the conventional HetNet design.
机译:非均质网络(Hetnets)采用分数频率重用(FFR)可提高单元覆盖,网络容量,效率,确保下一代无线网络的更高的数据速率,以及更好的服务质量(QoS)。然而,它们无法处理动态负载变化。因此,我们尝试将小区关联(BCA)偏置到从宏小区卸载用户到小单元基站(SCB)以克服容量降低和吞吐量劣化。它基于SCBSS的范围扩展来通过向参考信号接收的功率(RSRP)添加正偏压。在本文中,我们提出了一种具有适应性偏置方案的FFR辅助双层HetNet,用于负载平衡。对于使用Q学习算法的自动组织网络(SON)选择卸载小区的用户选择。仿真结果表明,我们的系统模型可以采用适当利用可用带宽和减轻干扰的动态负载变化,比传统的HetNet设计更好。

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