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Similarity-Based Prediction for Channel Mapping and User Positioning

机译:基于相似性的信道映射和用户定位预测

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In a wireless network, gathering information at the base station about mobile users based only on uplink channel measurements is an interesting challenge. Indeed, accessing the users locations and predicting their downlink channels would be particularly useful in order to optimize the network efficiency. In this letter, a supervised machine learning approach addressing these tasks in an unified way is proposed. It relies on a labeled database that can be acquired in a simple way by the base station while operating. The proposed regression method can be seen as a computationally efficient two layers neural network initialized with a non-parametric estimator. It is illustrated on realistic channel data, both for the positioning and channel mapping tasks, achieving better results than previously proposed approaches, at a lower cost.
机译:在无线网络中,仅基于上行链路信道测量的移动用户的基站收集信息是一个有趣的挑战。 实际上,访问用户位置并预测其下行链路信道对于优化网络效率是特别有用的。 在这封信中,提出了一种以统一的方式解决这些任务的监督机器学习方法。 它依赖于标记的数据库,可以在运行时以基站以简单的方式获取。 所提出的回归方法可以被视为用非参数估计器初始化的计算有效的两层神经网络。 它在实际信道数据上示出,用于定位和信道映射任务,以较低的成本实现比先前提出的方法更好的结果。

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