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A Learning Approach for Optimal Codebook Selection in Spatial Modulation Systems

机译:空间调制系统中最佳码本选择的学习方法

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For spatial modulation (SM) systems that utilize multiple transmit antennas/patterns with a single radio front-end, we propose a learning approach to predict the average symbol error rate (SER) conditioned on the instantaneous channel state. We show that the predicted SER can be used to lower the average SER over Rayleigh fading channels by selecting the optimal codebook in each transmission instance. Further by exploiting that feedforward artificial neural networks (ANNs) trained with a mean squared error (MSE) criterion estimate the conditional a posteriori probabilities, we maximize the expected rate for each transmission instance and thereby improve the link spectral efficiency.
机译:对于使用具有单个无线电前端的多个发射天线/模式的空间调制(SM)系统,我们提出了一种学习方法来预测以瞬时信道状态为条件的平均符号错误率(SER)。我们表明,通过在每个传输实例中选择最佳码本,可以将预测的SER用于降低瑞利衰落信道上的平均SER。通过利用均方误差(MSE)准则训练的前馈人工神经网络(ANN)估计条件后验概率,我们最大化了每个传输实例的预期速率,从而提高了链路频谱效率。

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