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Antenna Parameters Optimization in Self-Organizing Networks: Multi-Armed Bandits with Pareto Search

机译:自组织网络中的天线参数优化:带有帕累托搜索的多臂土匪

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With the huge increases in traffic volumes and subscribers, diverse devices, and rich media applications, manual management of mobile network becomes highly challenging in terms of optimization and management. Self-organizing networks (SON) has been introduced to optimize the network in an automatic manner. In this paper, we address the coverage and capacity joint optimization (CCO) by adaptively and simultaneously adjusting both antenna tilt and power. To this end, we propose: · a multi-player multi-armed bandit (MAB) framework (decentralized restless upper confidence bound (RUCB) algorithm) with a change point detection test based on Page-Hinkley (PH) statistics used to decide whether some change has occurred in the environment. Then, the strategy is designed to deal with such a change. · a central unit to deal with simultaneous conflicting actions when many cells decide to start the optimization process at the same time. · a Pareto search framework to deal with multi-objective optimization (CCO). To evaluate our work, we compared our proposal with the fixed antenna parameter scheme and with the linear scalarization function that transforms the multi-objective optimization problem into a scalar function. Simulation results show that the proposed method could improve user experience in terms of cell-center capacity and cell-edge coverage compared to different conventional methods and under different number of users.
机译:随着流量和订户,多样化的设备以及富媒体应用的巨大增长,在优化和管理方面,手动管理移动网络变得非常具有挑战性。自组织网络(SON)已被引入以自动方式优化网络。在本文中,我们通过自适应地同时调整天线倾斜度和功率来解决覆盖和容量联合优化(CCO)问题。为此,我们建议:·多人多武装匪徒(MAB)框架(去中心化的不安定置信区间上限(RUCB)算法),并具有基于Page-Hinkley(PH)统计信息的变化点检测测试,用于确定是否环境发生了一些变化。然后,设计该策略来应对这种变化。 ·一个中央单元,用于在许多单元决定同时开始优化过程时处理同时发生的冲突操作。 ·处理多目标优化(CCO)的Pareto搜索框架。为了评估我们的工作,我们将提案与固定天线参数方案和将多目标优化问题转换为标量函数的线性标量函数进行了比较。仿真结果表明,与不同的传统方法和不同的用户数量相比,该方法在小区中心容量和小区边缘覆盖方面可以改善用户体验。

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