基于移动性预测模型的飞蜂窝共享管理

D. Barth, Amira Choutri, L. Kloul, O. Marcé
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引用次数: 4

摘要

带宽共享模式为运营商面临的严重容量管理问题提供了一种激励解决方案,因为运营商能够向其覆盖范围内的移动用户提供有QoS保证的网络接入。本文考虑了一种基于强化学习算法的技术经济带宽共享模型。由于这种模型不允许学习算法的收敛性,由于飞蜂窝的尺寸小,移动用户的速度,更重要的是,他们到达的随机性,我们建议使用基于移动用户运动历史分析的移动性预测方法。提前知道下一个访问的小区为移动用户提供了更多的时间与访问提供者协商,并生成同步的资源保留请求,从而最大化访问提供者的收益。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Femtocells sharing management using mobility prediction model
Bandwidth sharing paradigm constitutes an incentive solution for the serious capacity management problem faced by operators as femtocells owners are able to offer a QoS guaranteed network access to mobile users in their femtocell coverage. In this paper, we consider a technico-economic bandwidth sharing model based on a reinforcement learning algorithm. Because such a model does not allow the convergence of the learning algorithm, due to the small size of the femtocells, the mobile users velocity and, more importantly, the randomness of their arrivals, we propose to use a mobility prediction approach based on the analysis of movements history of the mobile users. Knowing the next visited cell in advance provides more time to mobile user to negotiate with the access provider and to generate synchronized resource reservation requests that maximize the gain of the access provider.
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