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Distributed Learning-Based Cross-Layer Technique for Energy-Efficient Multicarrier Dynamic Spectrum Access With Adaptive Power Allocation

机译:基于分布式学习的跨层技术,具有自适应功率分配的节能多载波动态频谱接入

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摘要

This paper proposes energy and cross-layer aware resource allocation techniques that allow dynamic spectrum access (DSA) users, by means of learning algorithms, to locate and exploit unused spectrum opportunities effectively. Specifically, we design private objective functions for DSA users with multiple channel access and adaptive power allocation capabilities. We also propose simple two-phase heuristics for allocating spectrum and power resources among users. The proposed heuristics split the spectrum and power allocation problem into two subproblems, and solve each of them separately. The spectrum allocation problem is solved, during the first phase using learning. Two procedures to learn the channel selection are proposed and compared in terms of optimality, scalability, and robustness. The power allocation, on the other hand, is formulated as a real optimization problem and solved, during the second phase, by traditional optimization solvers. Simulation results show that energy and cross-layer awareness and multiple channel access capability improve the performance of the system in terms of the per-user average rewards received from accessing the dynamic spectrum access system. In addition, the two proposed methods for channel selection via learning represent a tradeoff between optimality, scalability, and robustness.
机译:本文提出了能源和跨层感知资源分配技术,这些技术允许动态频谱访问(DSA)用户通过学习算法来有效地定位和利用未使用的频谱机会。具体来说,我们为具有多通道访问和自适应功率分配功能的DSA用户设计了专用目标功能。我们还提出了简单的两阶段启发式方法,用于在用户之间分配频谱和功率资源。所提出的启发式方法将频谱和功率分配问题分为两个子问题,并分别解决它们。在第一阶段使用学习解决了频谱分配问题。提出了两种学习信道选择的程序,并在最佳性,可伸缩性和鲁棒性方面进行了比较。另一方面,功率分配被公式化为实际的优化问题,并在第二阶段由传统的优化求解器解决。仿真结果表明,能量和跨层感知能力以及多信道访问能力可以改善从访问动态频谱访问系统获得的每用户平均奖励方面的系统性能。此外,两种通过学习进行频道选择的方法代表了最佳性,可伸缩性和鲁棒性之间的权衡。

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