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首页> 外文期刊>Wireless Communications Letters, IEEE >Proactive Online Power Allocation for Uplink NOMA-IoT Networks With Delayed Gradient Feedback
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Proactive Online Power Allocation for Uplink NOMA-IoT Networks With Delayed Gradient Feedback

机译:具有延迟梯度反馈的上行链路NOMA-IOT网络主动在线功率分配

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摘要

In this letter, we propose a proactive online power allocation algorithm aiming to maximize the ergodic sum rate for an uplink multi-carrier non-orthogonal multiple access enabled Internet of Things (IoT) network, in which IoT devices (IoTDs) are subject to both instantaneous and ergodic transmit power constraints. The proposed algorithm enables a natural distributed implementation where each IoTD chooses its own transmit power proactively for future time slots without requiring instant channel power gain (CPG) information but only upon a delayed feedback of the sum rate gradient from the base station and a self-maintaining virtual queue. We show that the optimal power allocation for each IoTD can be easily obtained by a low-complexity bisection method. Moreover, the proposed algorithm achieves an [O(V), O(1/V)]-tradeoff between the virtual queue length and the ergodic sum rate optimality, where V is a positive parameter. Simulation results show that our algorithm has a comparable convergence speed and insignificant performance loss compared to a centralized drift-plus-penalty based algorithm upon instant CPG information.
机译:在这封信中,我们提出了一种主动的在线功率分配算法,其目的是最大化启用的上行链路多载波非正交访问的ergodic和速率,其中包含的内容(物联网)网络,其中IoT设备(IOTD)受到两者瞬时和ergodic传输功率约束。所提出的算法使得能够自然分布式实现,其中每个IOTD主动选择其自己的发射功率,以便在未来的时隙,而不需要即时通道功率增益(CPG)信息,而是仅在来自基站和自我的SUM速率梯度的延迟反馈时维护虚拟队列。我们表明每个IOTD的最佳功率分配可以通过低复杂性分配方法容易地获得。此外,所提出的算法实现了[O(V),O(1 / v)] - 虚拟队列长度和ergodic总和率最优性之间的折衷,其中V是正参数。仿真结果表明,与即时CPG信息的集中漂移加上惩罚算法相比,我们的算法具有相当的收敛速度和微不足道的性能损失。

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