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Optimizing utilization in cellular radio networks using mobility data

机译:使用移动性数据优化蜂窝无线网络中的利用率

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The main resource for any telecom operator is the physical radio cell network. We present two related methods for optimizing utilization in radio networks: Tetris optimization and selective cell expansion. Tetris optimization tries to find the mix of users from different market segments that provides the most even load in the network. Selective cell expansion identifies hotspot cells, expands the capacity of these radio cells, and calculates how many subscribers the radio network can handle after the expansions. Both methods are based on linear programming and use mobility data, i.e., data defining where different categories of subscribers tend to be during different times of the week. Based on real-world mobility data from a region in Sweden, we show that Tetris optimization based on six user segments made it possible to increase the number of subscribers by 58% without upgrading the physical infrastructure. The same data show that by selectively expanding less than 6% of the cells we are able to increase the number of subscribers by more than a factor of three without overloading the network. We also investigate the best way to combine Tetris optimization and selective cell expansion.
机译:任何电信运营商的主要资源都是物理无线电小区网络。我们提出了两种相关的方法来优化无线网络的利用率:俄罗斯方块优化和选择性小区扩展。俄罗斯方块优化试图找到不同细分市场的用户组合,这些用户可以在网络中提供最大的负载。选择性小区扩展可识别热点小区,扩展这些无线电小区的容量,并计算扩展后无线电网络可处理的订户数量。两种方法都基于线性规划并使用移动性数据,即,定义一周中不同时间不同类别的订户倾向于在哪里的数据。基于来自瑞典某个地区的真实世界的移动性数据,我们表明,基于六个用户群的Tetris优化可以在不升级物理基础架构的情况下将订户数量增加58%。相同的数据表明,通过选择性地扩展少于6%的小区,我们能够在不使网络过载的情况下将订户数量增加三倍以上。我们还研究了结合俄罗斯方块优化和选择性细胞扩增的最佳方法。

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