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首页> 外文期刊>Journal of signal processing systems for signal, image, and video technology >Optimal-Stopping Spectrum Sensing in Energy Harvesting Cognitive Radio Systems
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Optimal-Stopping Spectrum Sensing in Energy Harvesting Cognitive Radio Systems

机译:能量收集认知无线电系统中的最佳停止频谱感知

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In this paper, a cognitive radio system in which the secondary user (SU) is powered by energy harvested exclusively from environment is considered. The SU operates in a timeslotted mode and uses a timeslot in turn for energy harvesting, spectrum sensing and data transmission. In order to optimize the SU’s expected achievable throughput, strategy for energy harvesting and spectrum sensing should be carefully designed to tackle the tradeoff among the three. Such a problem leads to a parametrized optimal stopping problem, i.e., a mash-up of static and dynamic optimization problems in which save-ratio for energy harvesting is fixed (as a static variable parameter) while spectrum sensing runs in a channel-by-channel manner based on sensing results (as an optimal stopping problem). We propose an efficient algorithm to derive the optimal save-ratio and spectrum sensing rule, which is significantly faster than conventional simulated annealing algorithm. To further reduce the computational complexity, we also propose a suboptimal solution with an alternative optimization problem, where save-ratio and number of channels to be sensed are both static variables to be optimized. The alternative problem is formulated as a mixed-integer non-linear programming (MINLP) problem and closed-form solution is derived with in-depth analysis. We show that the proposed suboptimal solution is close in performance to the optimal one and outperforms a baseline strategy, which decouples optimization for energy harvesting and spectrum sensing by combining two existing techniques.
机译:在本文中,考虑了一种认知无线电系统,其中次要用户(SU)由专门从环境中收集的能量提供动力。 SU以时隙模式运行,并依次使用时隙进行能量收集,频谱感测和数据传输。为了优化SU的预期可实现吞吐量,应精心设计能量收集和频谱感测策略,以解决三者之间的权衡问题。这样的问题导致参数化的最佳停止问题,即静态和动态优化问题的混搭,其中固定的能量收集节省率(作为静态可变参数)是固定的,而频谱感测则逐个通道地进行。基于感测结果的信道方式(作为最佳停止问题)。我们提出了一种有效的算法来推导最优的保存率和频谱感知规则,它比传统的模拟退火算法要快得多。为了进一步降低计算复杂度,我们还提出了带有替代优化问题的次优解决方案,其中节省率和要检测的通道数都是要优化的静态变量。将替代问题表述为混合整数非线性规划(MINLP)问题,并通过深入分析得出闭式解。我们表明,所提出的次优解决方案在性能上接近于最佳解决方案,并且优于基线策略,该基线策略通过结合两种现有技术使能量收集和频谱感测的优化脱钩。

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