一种基于q -学习算法的认知终端接入网选择方案

Haifeng Tan, Yizhe Li, Yami Chen, Li Tan, Qian Li
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引用次数: 8

摘要

在B3G/4G无线通信系统中,用户将使用几种可用的无线接入技术中的一种连接到网络。本文提出了一种基于q学习的终端独立接入网选择算法,旨在综合考虑无线环境状况、网络性能和用户需求,提高资源利用率,提供最佳的服务质量。特别是,我们首次引入低碳的概念作为无线通信性能的评价指标之一,以降低功耗,实现质量与消耗的平衡。该方案基于认知网络的概念,该概念是基于未来网络的复杂性、异构性和可靠性需求以及认知导频通道的动机而提出的。仿真显示了接入网选择算法的性能,可以看出,与随机接入方法相比,该算法显著降低了阻塞率和功耗,提高了吞吐量。在未来的工作中,我们将继续研究有效的接入网选择算法,并尝试将低碳指标引入到无线通信系统的其他方面。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A novel access network selection scheme using Q-learning algorithm for cognitive terminal
In a B3G/4G wireless communication system, the users will connect to the network using one of several available radio access technologies. In this paper, we proposed a Q-learning based algorithm for terminals' independent access network selection with the aim of improving the resource utilization and providing the best quality of service with respect to the wireless environment status, network performance and user' requirement. In particular, for the first time we introduced the concept of low-carbon as one of the evaluation indicators of wireless communication performance, in order to reduce the power consumption and achieve a balance between quality and consumption. The proposed scheme is based on the concept of cognitive network, which has been proposed recently by the motivation of complexity, heterogeneity and reliability requirements of tomorrow's network and the cognitive pilot channel used in it. The performance of the access network selection algorithm is shown in the simulation and it can be seen that this algorithm significantly reduced the blockrate and power consumption as well as increased the throughput compared with random accessing approach. In future work, we will continue to research on the effective access network selection algorithm and try to introduce the low-carbon indicator to other aspects of the wireless communication system.
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