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On Optimal Scheduling and Power Control for Uncoordinated Multiple Access by Energy Harvesting Nodes

机译:能量收集节点的非协调多路访问的最优调度和功率控制

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The goal in this paper is to design an optimal scheduling and power control policy that maximizes the long-term time-averaged sum throughput of a Gaussian multiple access channel (MAC) with energy harvesting (EH) nodes, and emph{facilitates uncoordinated operation} of the nodes. In order to benchmark the performance of any policy, we derive an upper bound on the sum throughput by considering a genie-aided system where the nodes have infinite capacity batteries and can freely share the available energy between them. Next, we design a time-sharing based power control policy for the EH MAC, which operates in an uncoordinated fashion. We show that, surprisingly, the sum throughput obtained by the proposed policy achieves the genie-aided upper bound asymptotically in the battery size at each node. Simulation results validate the theoretical findings and illustrate the relative impact of various system parameters (e.g., the battery size required to achieve the upper bound) on the number of nodes and the variation in the harvesting rates across the nodes.
机译:本文的目标是设计最佳调度和功率控制策略,可以使用能量收集(EH)节点的高斯多访问通道(MAC)的长期时间平均总吞吐量,\ emph {促进了不协调的操作节点的}。为了基准任何策略的性能,我们通过考虑节点具有无限容量电池的精灵辅助系统,我们推导了总吞吐量的上限。接下来,我们设计了EH Mac的基于时间共享的功率控制策略,以不协调的方式运行。令人惊讶的是,令人惊讶的是,所提出的政策获得的总吞吐量可以在每个节点的电池大小中渐近渐近的Genie-Anedloge。仿真结果验证了理论上的发现,并说明了各种系统参数(例如,在节点上收集速率的变化所需的电池尺寸所需的电池大小所需的电池大小)的相对影响。

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