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首页> 外文期刊>IEEE Transactions on Vehicular Technology >Training Resource Allocation for User-Centric Base Station Cooperation Networks
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Training Resource Allocation for User-Centric Base Station Cooperation Networks

机译:以用户为中心的基站合作网络的培训资源分配

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摘要

User-centric base station (BS) cooperative transmission strives to satisfy the quality of service of each user no matter where the user is located. The resulting user-dependent cooperative clusters are inevitably overlapped. To minimize the mean square error of channel estimation assisting user-centric downlink cooperative transmission, the training signals sent from the BSs in each cluster or from the users selecting the same BS in their clusters should be mutually orthogonal. In this paper, we study the orthogonal training resource-allocation problem for user-centric cooperative network aiming at minimizing the overall training overhead. We find the optimal solution through a graph-theoretic approach. To provide a feasible solution for large-scale networks, a low-complexity algorithm is then proposed. Simulation results show that the algorithm performs closely to the optimal solution, and both provide remarkably higher net throughput than the system with fixed clustering.
机译:以用户为中心的基站(BS)协作传输努力满足每个用户的服务质量,无论该用户位于何处。由此产生的依赖用户的协作集群不可避免地会重叠。为了最小化辅助以用户为中心的下行链路协作传输的信道估计的均方误差,从每个集群中的BS或者从在其集群中选择相同BS的用户发送的训练信号应该相互正交。在本文中,我们研究了以用户为中心的协作网络的正交训练资源分配问题,旨在最小化总体训练开销。我们通过图论方法找到最佳解决方案。为了给大规模网络提供可行的解决方案,提出了一种低复杂度的算法。仿真结果表明,该算法的性能与最优解非常接近,与固定聚类系统相比,两者均提供了明显更高的净吞吐量。

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