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首页> 外文期刊>Wireless personal communications: An Internaional Journal >Training Power Allocation Based on MSE-Minimization for Multi-Relay Amplify-and-Forward Cooperation in Wireless Sensor Networks
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Training Power Allocation Based on MSE-Minimization for Multi-Relay Amplify-and-Forward Cooperation in Wireless Sensor Networks

机译:基于MSE最小化的培训功率分配对无线传感器网络中的多继电器放大和前进协作的最小化

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摘要

In this paper, a training scheme for multi-relay clustered wireless sensor networks is proposed for the destination cluster head node to estimate the individual source-relay and relay-destination channels. Compared with an existing training scheme, the proposed one has shown improved efficiency with reduced power and computation time in the training of the source relay channels. Furthermore, the training power allocation problem is analyzed. Based on minimizing the total mean-square-error (MSE) of all channel estimates, two approximate solutions for the power allocation among all network nodes and all training links are derived. The first solution is adaptive to the instantaneous relay-destination channel estimates, thus requires feedback from the destination during the training process. The other solution depends on channel variances only and has lower complexity in implementation. Simulation results demonstrate that the proposed training scheme and power allocation solutions obtain lower total MSE and higher network throughput than existing schemes.
机译:在本文中,提出了一种用于多中继集群无线传感器网络的训练方案,用于目的地簇头节点来估计各个源中继和中继目的地信道。与现有的训练方案相比,所提出的提出的效率降低了源中继信道训练中的功率和计算时间。此外,分析了训练功率分配问题。基于最小化所有信道估计的总均方误差(MSE),导出了所有网络节点中的功率分配和所有训练链路的两个近似解。第一解决方案适用于瞬时继电器目的地信道估计,因此需要在训练过程期间从目的地反馈。其他解决方案仅取决于信道差异,并且在实施方面具有较低的复杂性。仿真结果表明,所提出的培训方案和功率分配解决方案比现有方案获得较低的总MSE和更高的网络吞吐量。

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