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Deep CSI Compression and Coordinated Precoding for Multicell Downlink Systems

机译:Multicell Downlink系统的深度CSI压缩和协调预编码

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This work proposes a deep-learning (DL) based coordinated precoder design for multicell downlink systems with rate-limited exchange of channel state information (CSI) among base-stations (BSs). Two CSI compression techniques are proposed, one based on a binarized convolutional neural network (CNN) and one based on a learned vector-quantization (VQ) codebook. The former utilizes a CNN-based CSI feature extractor to directly compute the binary feature vector that is to be exchanged with other BSs. The latter utilizes a DL-based VQ codebook to encode the CSI feature vector that is obtained at the output of the feature extractor. In both cases, each BS takes the rate-limited CSI received from other BSs as input to a precoder network that produces the normalized precoding vectors and the transmit powers using a multitask learning architecture. By using solutions of the weighted minimum mean square error (WMMSE) algorithm as the output labels, end-to-end training of both the CSI compression and transmit precoder networks is performed jointly at all BSs. By doing so, the CSI compression networks will be able to extract the CSI features that are most effective for precoder computation at the BSs. Our simulation results show that the proposed schemes can achieve weighted sum rates close to that in the full CSI scenario, even when the number of exchanged bits is small, and outperform existing random VQ methods.
机译:这项工作提出了一种深学习(DL)基于协调预编码器设计用于与信道状态信息(CSI)的基站之间(BS)的速率有限的交换多小区的下行链路的系统。两个CSI压缩技术提出了一个基于基于一个有学问的矢量量化(VQ)码本二值化卷积神经网络(CNN)和一个上。前者利用基于CNN-CSI特征提取器直接计算是与其他BS交换的二进制特征向量。后者利用基于DL-VQ码以编码中在该特征提取器的输出所获得的CSI特征向量。在这两种情况下,每个BS需要来自其他BS接收的速率限制的CSI作为输入到产生归一化的预编码矢量,并使用多任务学习结构的发送功率的预编码器网络。通过使用加权最小均方误差的解决方案(WMMSE)算法作为输出标签,端至端训练CSI压缩和传输预编码器网络两者的共同在所有BS执行。通过这样做,沪深压缩网络将能够提取是最有效的基站预编码器计算的CSI功能。我们的模拟结果表明,该方案可以实现加权总和率接近在全CSI的情况下,即使交换位的数量小,优于现有的随机VQ方法。

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