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Optimized Small Cell Range Expansion in Mobile Communication Networks using Multi-Class Support Vector Machines

机译:使用多级支持向量机的移动通信网络中优化的小型单元格范围扩展

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Heterogeneous cellular architectures are a promising technology direction for upcoming generations of wireless communication networks. Increasing performance requirements are fulfilled by utilizing a dense deployment of low-power small cells in addition to existing macro cells. In such dense cellular networks it is critical to prevent performance losses from increasing interferences and uneconomic operating costs caused by high power consumptions. These changes in the network architecture create the need for effective control mechanisms specifically designed for heterogeneous networks. Range expansion for small cells has been proposed and extensively researched to achieve load balancing between macro cells and small cells. In this work, we propose a decentralized approach for cell range expansion in small cell networks that in operation only requires very limited local interaction between neighboring cells. We use multiclass support vector machines as a classifier to select suitable parameters for each small cell. Experimental results show that the proposed decentralized approach achieves close to optimal load balancing performance.
机译:异构蜂窝架构是即将到来的几代无线通信网络的有希望的技术方向。除了现有的宏观小区之外,通过利用低功率小细胞的密集部署,满足了提高性能要求。在这种致密的蜂窝网络中,防止由于高功耗引起的干扰和不经济的运营成本来防止性能损失至关重要。网络架构中的这些变化会创建专门为异构网络设计的有效控制机制。已经提出和广泛地研究了小型电池的扩展,以实现宏观细胞和小细胞之间的负载平衡。在这项工作中,我们提出了一种用于小区网络中的小区范围扩展的分散方法,在操作中仅需要相邻单元之间的局部相互作用非常有限。我们使用多键支持向量机作为分类器,为每个小单元选择合适的参数。实验结果表明,建议的分散方法达到最佳负载平衡性能。

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