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A Novel Dynamic Spectrum Access Framework Based on Reinforcement Learning for Cognitive Radio Sensor Networks

机译:基于增强学习的认知无线电传感器网络动态频谱接入框架

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摘要

Cognitive radio sensor networks are one of the kinds of application where cognitive techniques can be adopted and have many potential applications, challenges and future research trends. According to the research surveys, dynamic spectrum access is an important and necessary technology for future cognitive sensor networks. Traditional methods of dynamic spectrum access are based on spectrum holes and they have some drawbacks, such as low accessibility and high interruptibility, which negatively affect the transmission performance of the sensor networks. To address this problem, in this paper a new initialization mechanism is proposed to establish a communication link and set up a sensor network without adopting spectrum holes to convey control information. Specifically, firstly a transmission channel model for analyzing the maximum accessible capacity for three different polices in a fading environment is discussed. Secondly, a hybrid spectrum access algorithm based on a reinforcement learning model is proposed for the power allocation problem of both the transmission channel and the control channel. Finally, extensive simulations have been conducted and simulation results show that this new algorithm provides a significant improvement in terms of the tradeoff between the control channel reliability and the efficiency of the transmission channel.
机译:认知无线电传感器网络是可以采用认知技术的一种应用,并且具有许多潜在的应用,挑战和未来的研究趋势。根据研究调查,动态频谱访问是未来认知传感器网络的重要且必要的技术。传统的动态频谱访问方法是基于频谱漏洞的,它们具有一些缺点,例如可访问性低和可中断性高,会对传感器网络的传输性能产生负面影响。为了解决这个问题,本文提出了一种新的初始化机制来建立通信链路并建立传感器网络,而无需采用频谱孔来传达控制信息。具体而言,首先讨论了一种传输信道模型,用于分析衰落环境中三个不同策略的最大可访问容量。其次,针对传输信道和控制信道的功率分配问题,提出了一种基于强化学习模型的混合频谱接入算法。最后,进行了广泛的仿真,仿真结果表明,该新算法在控制通道可靠性和传输通道效率之间的权衡方面提供了重大改进。

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