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Adaptive Channel Prediction, Beamforming and Scheduling Design for 5G V2I Network

机译:5G V2I网络的自适应信道预测,波束成形和调度设计

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One of the important use-cases of 5G network is the vehicle to infrastructure (V2I) communication which requires accurate understanding about its dynamic propagation environment. As 5G base stations (BSs) tend to have multiple antennas, they will likely employ beamforming to steer their radiation pattern to the desired vehicle equipment (VE). Furthermore, since most wireless standards employ an OFDM system, each VE may use one or more sub-carriers. To this end, this paper proposes a joint design of adaptive channel prediction, beamforming and scheduling for 5G V2I communications. The channel prediction algorithm is designed without the training signal and channel impulse response (CIR) model. In this regard, first we utilize the well known adaptive recursive least squares (RLS) technique for predicting the next block CIR from the past and current block received signals (a block may have one or more OFDM symbols). Then, we jointly design the beamforming and VE scheduling for each sub- carrier to maximize the uplink channel average sum rate by utilizing the predicted CIR. The beamforming problem is formulated as a Rayleigh quotient optimization where its global optimal solution is guaranteed. And, the VE scheduling design is formulated as an integer programming problem which is solved by employing a greedy search. The superiority of the proposed channel prediction and scheduling algorithms over those of the existing ones is demonstrated via numerical simulations.
机译:5G网络的重要用例之一是车辆到基础设施(V2I)的通信,这需要对其动态传播环境有准确的了解。由于5G基站(BS)倾向于具有多个天线,它们可能会采用波束成形将其辐射方向图导向所需的车辆设备(VE)。此外,由于大多数无线标准采用OFDM系统,所以每个VE可以使用一个或多个子载波。为此,本文提出了针对5G V2I通信的自适应信道预测,波束成形和调度的联合设计。在没有训练信号和信道冲激响应(CIR)模型的情况下设计了信道预测算法。在这方面,首先,我们利用众所周知的自适应递归最小二乘(RLS)技术,根据过去和当前块接收到的信号(一个块可能具有一个或多个OFDM符号)来预测下一个块CIR。然后,我们为每个子载波共同设计波束成形和VE调度,以利用预测的CIR最大化上行链路信道平均和率。波束成形问题被表述为瑞利商最优化,其中保证了其全局最优解。并且,VE调度设计被表述为通过采用贪婪搜索来解决的整数规划问题。通过数值仿真证明了所提出的信道预测和调度算法优于现有信道预测和调度算法的优越性。

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