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Bi-SON: Big-Data Self Organizing Network for Energy Efficient Ultra-Dense Small Cells

机译:Bi-SON:大数据自组织网络,用于高效节能的超密集小型电池

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In this paper, we present a big-data self organizing network (Bi-SON) framework aiming to optimize energy efficiency of ultra-dense small cells. Although small cell can enhance the capacity of cellular mobile networks, ultra-dense small cells suffer from severe interference and poor energy efficiency. The self organizing network (SON) can automatically manage and optimize the system performance. However, current SON-enable mechanisms mostly focus on indoor femtocells. Our proposed Bi-SON suggests a data flow framework from data collection, analysis and optimization to reconfiguration. We adopt the statistics analysis approach to determine the optimal system parameters to improve the energy efficiency of a huge number of outdoor small cells. The Bi-SON mechanism periodically collects the management data of small cells, e.g. transmission power, reference signal receiving power and the number of users per cell. We find that simple sorting and filtering data analysis from huge number of small cells can already effectively find the almost optimal solution. Our simulation results show that Bi-SON can improve throughput and energy efficiency by 50% and 135% respectively, compared to the scheme without energy saving approach.
机译:在本文中,我们提出了一个大数据自组织网络(Bi-SON)框架,旨在优化超密集小型电池的能源效率。尽管小型蜂窝小区可以增强蜂窝移动网络的容量,但是超密集小型蜂窝小区却遭受严重干扰和能源效率低下。自组织网络(SON)可以自动管理和优化系统性能。但是,当前的SON启用机制主要集中在室内毫微微小区上。我们提出的Bi-SON建议从数据收集,分析和优化到重新配置的数据流框架。我们采用统计分析方法来确定最佳系统参数,以提高大量室外小型蜂窝小区的能源效率。 Bi-SON机制会定期收集小型小区的管理数据,例如发射功率,参考信号接收功率和每个小区的用户数。我们发现,从大量小型小区进行简单的排序和过滤数据分析已经可以有效地找到几乎最佳的解决方案。我们的仿真结果表明,与没有节能方法的方案相比,Bi-SON可以分别将吞吐量和能源效率提高50%和135%。

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