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Learning-Based Channel Selection of VDSA Networks in Shared TV Whitespace

机译:共享电视空白中基于学习的VDSA网络频道选择

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In this paper, we propose a reinforcement learning-based approach for enabling vehicles to make intelligent channel selection choices across TV whitespace spectrum. In order for vehicle communication networks to dynamically access TV whitespace in a secondary manner, it is imperative that these communication systems be capable of coexisting with other types of secondary wireless networks operating within the same frequency range. Consequently, we first propose a TV whitespace channel sharing scheme that would facilitate the coexistence between WLAN, WRAN, and vehicular communication networks. Using the channel utilization variations observed by a collection of mobile vehicular communication systems, we then devised a reinforcement learning-based adaptive channel selection algorithm that employs channel utilization sensing in order to reinforce the decisions made by the vehicular communication system. Moreover, the parameters of the proposed learning approach are adaptively tuned in order to achieve better adaptation to a particular environment. A computer emulation environment composed of actual real-world sensing measurement data and a simulated TV whitespace network is created in order to accurately model the characteristics of future wireless environment, as well as to test the proposed learning-based channel access approach. Experimental results show a significant performance improvement with respect to vehicle communication.
机译:在本文中,我们提出了一种基于强化学习的方法,使车辆能够在电视空白频谱中做出智能的频道选择选择。为了使车辆通信网络能够以辅助方式动态访问电视空白,这些通信系统必须能够与在相同频率范围内工作的其他类型的辅助无线网络共存。因此,我们首先提出一种电视空白频道共享方案,该方案将促进WLAN,WRAN和车辆通信网络之间的共存。利用移动车辆通信系统的集合所观察到的信道利用率变化,我们然后设计了一种基于增强学习的自适应信道选择算法,该算法采用信道利用率感知以加强由车辆通信系统做出的决策。此外,对所提出的学习方法的参数进行自适应调整,以便更好地适应特定环境。创建了由实际的实际传感测量数据和模拟的电视空白网络组成的计算机仿真环境,以便准确地模拟未来无线环境的特征,并测试所提出的基于学习的频道访问方法。实验结果表明,在车辆通讯方面,性能有了显着提高。

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