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POMDP-based cross-layer power adaptation techniques in cognitive radio networks

机译:认知无线电网络中基于POMDP的跨层功率自适应技术

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摘要

We investigate the spectrum access and power adaptation techniques in a cognitive radio network to optimize throughput of a secondary user with specified sensing error limit. Using partially observable Markov decision process framework, we first study the optimal policies, where the primary user is assumed to be in busy, concurrent or idle state, and the secondary user either stay idle or transmits with any of the two designed power level. The collision is avoided with proper reward choices. Although the primary user's states are hidden, their activity statistics, ranges of transmission, and interference thresholds are assumed to be known. The instantaneous optimal policy for each time-slot is then obtained for the current belief of the states obtained through channel sensing. We also propose a forward algorithm based technique that updates belief using the sensor output in the first slot and then using the acknowledgment feedback in the subsequent time-slots in a frame. Simulation results show that the proposed cross-layer technique is more throughput efficient than the physical layer optimal case, specially when the primary user activity is slowly varying and/or frame size is smaller.
机译:我们研究了认知无线电网络中的频谱访问和功率自适应技术,以优化具有指定感测错误限制的辅助用户的吞吐量。使用部分可观察的马尔可夫决策过程框架,我们首先研究最佳策略,其中假定主要用户处于繁忙,并发或空闲状态,而次要用户则保持空闲或以这两个设计功率水平中的任何一个进行传输。选择适当的奖励可以避免碰撞。尽管主要用户的状态是隐藏的,但假定他们的活动统计信息,传输范围和干扰阈值是已知的。然后针对通过信道感测获得的状态的当前置信度,获得每个时隙的瞬时最优策略。我们还提出了一种基于前向算法的技术,该技术使用第一个时隙中的传感器输出,然后使用帧中后续时隙中的确认反馈来更新置信度。仿真结果表明,所提出的跨层技术比物理层最佳情况具有更高的吞吐效率,特别是当主要用户活动缓慢变化和/或帧大小较小时。

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