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首页> 外文期刊>IEEE communications letters >Learning-Based Resource Partitioning in Heterogeneous Networks With Multiple Network Operators
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Learning-Based Resource Partitioning in Heterogeneous Networks With Multiple Network Operators

机译:多个网络运营商异构网络中基于学习的资源分区

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In heterogeneous network, it is important to mitigate cross-tier interference. Resource partitioning is the one of solution to reduce interference. However, most of studies on partitioning assumed that there was only one network operator to cooperate with. In this letter, we study the network selection problem of small access points in heterogeneous networks, which are provided by multiple network operators. We model the multiple network operators scenario as a congestion game. To solve the equilibrium point of suggested game, we analyze some features of proposed model such as potential game property, smoothed best response dynamics and logit equilibrium. Then, we propose a reinforcement learning algorithm that can reach logit equilibrium in distributed way. Moreover, we also suggest the adjustment of learning parameters to enhance adaptability. By means of simulations, it is shown that proposed algorithm has near-optimal performance in view of throughput, fairness and adaptability.
机译:在异构网络中,重要的是减轻交叉层干扰。资源分区是减少干扰的解决方案之一。然而,关于分区的大多数研究假定只有一个网络运营商合作。在这封信中,我们研究异构网络中的小接入点的网络选择问题,由多个网络运营商提供。我们将多个网络运营商的方案模拟为拥塞游戏。为了解决建议游戏的均衡点,我们分析了诸如潜在游戏属性,平滑最佳响应动态和Logit平衡等型号的一些特征。然后,我们提出了一种加强学习算法,可以以分布式方式到达Logit平衡。此外,我们还建议调整学习参数以提高适应性。通过仿真,示出了考虑到吞吐量,公平性和适应性的算法具有近乎最佳性能。

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