首页> 外文会议>International Conference on Telecommunications(ICT 2004); 20040801-20040806; Fortaleza; BR >Adaptive Decision Feedback Multiuser Detectors with Recurrent Neural Networks for DS-CDMA in Fading Channels
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Adaptive Decision Feedback Multiuser Detectors with Recurrent Neural Networks for DS-CDMA in Fading Channels

机译:衰落信道中具有递归神经网络的DS-CDMA自适应决策反馈多用户检测器

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摘要

In this work we propose adaptive decision feedback (DF) multiuser detectors (MUDs) for DS-CDMA systems using recurrent neural networks (RNN). A DF CDMA receiver structure is presented with dynamically driven RNNs in the feedforward section and finite impulse response (FIR) linear filters in the feedback section for performing interference cancellation. A stochastic gradient (SG) algorithm is developed for estimation of the parameters of the proposed receiver structure. A comparative analysis of adaptive minimum mean squared error (MMSE) receivers operating with SG algorithms is carried out for linear and DF receivers with FTR filters and neural receiver structures with and without DF. Simulation experiments including fading channels show that the DF neural MUD outperforms DF MUDs with linear FIR filters, linear receivers and the neural receiver without interference cancellation.
机译:在这项工作中,我们为使用递归神经网络(RNN)的DS-CDMA系统提出了自适应决策反馈(DF)多用户检测器(MUD)。提出了一种DF CDMA接收机结构,前馈部分具有动态驱动的RNN,而反馈部分则具有有限脉冲响应(FIR)线性滤波器,用于执行干扰消除。随机梯度(SG)算法被开发用于估计所提出的接收机结构的参数。针对带有FTR滤波器的线性和DF接收器以及带有和不带有DF的神经接收器结构,对采用SG算法工作的自适应最小均方误差(MMSE)接收器进行了比较分析。包含衰落信道的仿真实验表明,DF神经MUD优于具有线性FIR滤波器,线性接收器和无干扰消除的神经接收器的DF MUD。

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