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Performance study of RASO algorithm beyond 4G

机译:超越4G的RASO算法性能研究

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Self-optimization for random access procedure in SONs has a profound impact on user equipment experience and network performance in 3G/4G. However, the process of designing self-optimization towards a 5G system is a difficult challenge. In this paper, we proposed a multi-objective algorithm of random access self-optimization (RASO) in terms of auto-adjustment and configuration, which includes physical random access channel parameter, transmission power parameter, and backoff parameter jointly auto-adapted with respect to changes in the network. Our simulation demonstrated that a combination of these control parameters and their auto-adjustment directly improves the access probability and access delay at high load, compared to using a single control parameter. Such combination also enhances the reception of random access requests, thus producing better quality of service. Simulation results are thus presented to illustrate the algorithm's effectiveness.
机译:SON中随机访问过程的自我优化对3G / 4G中的用户设备体验和网络性能产生了深远的影响。但是,针对5G系统进行自我优化设计的过程是一项艰巨的挑战。本文从自动调整和配置的角度出发,提出了一种多目标随​​机接入自优化算法,包括物理随机接入信道参数,发射功率参数和退避参数的联合自适应。改变网络。我们的仿真表明,与使用单个控制参数相比,这些控制参数及其自动调整的组合直接提高了高负载下的访问概率和访问延迟。这种组合还增强了对随机访问请求的接收,从而产生了更好的服务质量。因此,给出了仿真结果以说明该算法的有效性。

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