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Automated Self-Optimization in Heterogeneous Wireless Communications Networks

机译:异构无线通信网络中的自动自我优化

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Traditional single-tiered wireless communications networks cannot scale to satisfy exponentially rising demand. Operators are increasing capacity by densifying their existing macro cell deployments with co-channel small cells. However, cross-tier interference and load balancing issues present new optimization challenges in channel sharing heterogeneous networks (HetNets). One-size-fits-all heuristics for allocating resources are highly suboptimal, but designing ad hoc controllers requires significant human expertise and manual fine-tuning. In this paper, a unified, flexible, and fully automated approach for end-to-end optimization in multi-layer HetNets is presented. A hill climbing algorithm is developed for reconfiguring cells in real time in order to track dynamic traffic patterns. Schedulers for allocating spectrum to user equipment are automatically synthesized using grammar-based genetic programming. The proposed methods for configuring the HetNet and scheduling in the time-frequency domain can address ad hoc objective functions. Thus, the operator can flexibly tune the tradeoff between peak rates and fairness. Far cell edge downlink rates are increased by up to 250% compared with non-adaptive baselines. Alternatively, peak rates are increased by up to 340%. The experiments illustrate the utility and future potential of natural computing techniques in software-defined wireless communications networks.
机译:传统的单层无线通信网络无法扩展以满足指数级增长的需求。运营商通过与同信道小型蜂窝小区一起密集其现有的宏蜂窝小区部署来提高容量。但是,跨层干扰和负载平衡问题在信道共享异构网络(HetNets)中提出了新的优化挑战。一种一刀切的分配资源的试探法是次优的,但是设计临时控制器需要大量的人工知识和手动微调。本文提出了一种用于多层HetNets中端到端优化的统一,灵活且全自动的方法。开发了用于实时重新配置小区以跟踪动态流量模式的爬山算法。使用基于语法的遗传编程可自动合成用于向用户设备分配频谱的调度程序。所提出的用于在时频域中配置HetNet和进行调度的方法可以解决临时目标函数。因此,操作员可以灵活地调整峰值速率和公平性之间的权衡。与非自适应基准相比,远端小区边缘下行链路速率提高了多达250%。另外,峰值速率最多可增加340%。实验说明了自然计算技术在软件定义的无线通信网络中的实用性和未来潜力。

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