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Can compressed sensing be efficient in communication with sparse data?

机译:可以压缩的感测与稀疏数据通信有效吗?

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L User Equipments (mobile stations) transmit signals with sparsity S and their signals are compressively sensed to M samples by Z remote samplers (a distributed antenna arrangement) and the uplink channel is estimated by a central processor (the “central brain”). For a given system signal to noise ratio, retained samples M and sparsity S, we approximate the loss in sum mutual information due to imperfect knowledge of the channel. The approximation is premised on a lower bound of the mutual information which accounts for the power in the channel estimation error. Also, throughput results are given for adaptively adjusting the sparsity of multiple users' transmit signals based on channel fading.
机译:L用户设备(移动台)通过Z远程采样器(分布天线布置)将其信号传输具有稀疏性S的信号,并且它们的信号被压缩到M个样本(分布式天线布置),并且通过中央处理器(“中央大脑”估计上行链路信道)。对于给定的系统信号到噪声比,保留样本M和稀疏性S,我们近似于由于通道的不完美知识而导致的总和相互信息的损失。近似是在互信息的较低限制的下限上,该互联信息占信道估计误差中的电力。此外,给出了基于信道衰落的多用户发送信号的自适应调整吞吐量结果。

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