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首页> 外文期刊>Selected Topics in Signal Processing, IEEE Journal of >Interference Pricing Resource Allocation and User-Subchannel Matching for NOMA Hierarchy Fog Networks
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Interference Pricing Resource Allocation and User-Subchannel Matching for NOMA Hierarchy Fog Networks

机译:NOMA分层雾网络的干扰定价资源分配和用户子信道匹配

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摘要

Fog computing and non-orthogonal multiple access (NOMA) are considered to be two promising technologies due to excellent low latency and high spectrum utilization. In the past, these two techniques were often studied separately. This paper conducts the joint research on downlink NOMA hierarchical networks (HieNets) and fog computing about the energy efficiency (EE) resource allocation. We establish a two-stage Stackelberg game model with macro remote radio head (MRRH) as a leader and small remote radio heads (SRRHs) as followers. In this model, MRRH suppresses the interference generated by SRRHs through interference pricing to ensure its own data transmission. Due to the non-convexity and the non-deterministic polynomial-time hard of the EE function, we decomposed resource allocation into two parts. For the subchannel allocation part, a bilateral user-subchannel matching scheme based on the large equivalent channel gain priority is proposed. For the power allocation part, we use the power penalty method to further simplify the problem and introduce a cache reward mechanism. A pricing-based distributed iterative power allocation algorithm is proposed. Simulation results demonstrate that the proposed algorithms are superior to the existing NOMA algorithms, and the NOMA fog HieNets have great potential to enhance the performance of communication systems.
机译:由于出色的低延迟和高频谱利用率,雾计算和非正交多路访问(NOMA)被认为是两种有前途的技术。过去,这两种技术经常被分开研究。本文对下行NOMA分层网络(HieNets)和关于能效(EE)资源分配的雾计算进行了联合研究。我们建立了一个两阶段的Stackelberg游戏模型,其中以宏远程无线电头(MRRH)为领导者,小型远程无线电头(SRRH)为跟随者。在此模型中,MRRH通过干扰定价来抑制SRRH产生的干扰,以确保其自身的数据传输。由于EE函数具有非凸性和不确定性,因此我们将资源分配分为两部分。对于子信道分配部分,提出了一种基于大等效信道增益优先级的双边用户子信道匹配方案。对于功率分配部分,我们使用功率惩罚方法进一步简化了问题,并引入了缓存奖励机制。提出了一种基于定价的分布式迭代功率分配算法。仿真结果表明,所提出的算法优于现有的NOMA算法,并且NOMA fog HieNets具有提高通信系统性能的巨大潜力。

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