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Intelligent Handover using User-Mobility Pattern Analysis for 5G Mobile Networks

机译:使用5G移动网络的用户移动模式分析智能切换

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Millimeter Waves (mmWaves) offer gigabit data rates in fifth generation (5G) mobile networks. The challenge however is mmWaves are highly sensitive to user mobility and topographic dynamics. Sensitivity enhances occurrences of irregular Line of Sight (LOS) and non-LOS spots in the network that distort cell patterns causing instances of gradual and abrupt changes to user data rates. To maintain desired quality of service, Handoff (HO) schemes need to be versatile and intelligent to avoid target links likely to abruptly fail. Unfortunately, most HO schemes cannot forecast instances of abrupt changes in targeted links. This leads to too early, delayed or wrong HOs, at worst actual link failure. To mitigate the HO challenges, this paper adopts a Jump-Markov-Linear-System HO model. The scheme learns to forecast the likely deterioration pattern of the target mmWave link using maximum likelihood approximation. This in turn helps switch to links likely to remain in LOS longer/gradually deteriorate between HOs. Thus, the scheme does not just select target links with higher data rate/ Signal but considers there reliability too past a HO. Simulation results show selection of more reliable links than in classic schemes: users remain connected longer between HOs.
机译:毫米波(MMWaves)提供第五代(5G)移动网络中的千兆数据速率。然而,挑战是MMWaves对用户移动性和地形动态非常敏感。灵敏度增强了网络中不规则视线(LOS)和非LOS斑点的出现,其扭曲细胞模式导致逐渐和突然变化对用户数据速率的情况。为了保持所需的服务质量,切换(HO)方案需要多功能,智能,以避免可能突然失败的目标链接。不幸的是,大多数HO计划不能预测目标链接中突然变化的情况。这导致太早,延迟或错误的讨论,处于最严重的实际链路故障。为了缓解HO挑战,本文采用跳跃 - 马车 - 线性系统HO模型。该方案学习使用最大似然近似来预测目标MMWAVE链路的可能的劣化模式。这反过来又帮助切换到留在LOS中的链接更长/逐渐恶化。因此,该方案不仅仅选择具有更高数据速率/信号的目标链路,而是认为过度的可靠性太高。仿真结果显示比经典方案更可靠的链接:用户在HOS之间保持连接更长。

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