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首页> 外文期刊>IEEE Transactions on Neural Networks >Space-Time Adaptive Decision Feedback Neural Receivers With Data Selection for High-Data-Rate Users in DS-CDMA Systems
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Space-Time Adaptive Decision Feedback Neural Receivers With Data Selection for High-Data-Rate Users in DS-CDMA Systems

机译:DS-CDMA系统中具有高数据速率用户的具有数据选择的时空自适应决策反馈神经接收器

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摘要

A space-time adaptive decision feedback (DF) receiver using recurrent neural networks (RNNs) is proposed for joint equalization and interference suppression in direct-sequence code-division multiple-access (DS-CDMA) systems equipped with antenna arrays. The proposed receiver structure employs dynamically driven RNNs in the feedforward section for equalization and multiaccess interference (MAI) suppression and a finite impulse response (FIR) linear filter in the feedback section for performing interference cancellation. A data selective gradient algorithm, based upon the set-membership (SM) design framework, is proposed for the estimation of the coefficients of RNN structures and is applied to the estimation of the parameters of the proposed neural receiver structure. Simulation results show that the proposed techniques achieve significant performance gains over existing schemes.
机译:提出了一种使用递归神经网络(RNN)的时空自适应决策反馈(DF)接收机,用于配备天线阵列的直接序列码分多址(DS-CDMA)系统中的联合均衡和干扰抑制。所提出的接收机结构在前馈部分采用动态驱动的RNN进行均衡和多址干扰(MAI)抑制,并在反馈部分采用有限冲激响应(FIR)线性滤波器进行干扰消除。提出了一种基于成员集(SM)设计框架的数据选择性梯度算法,用于估计RNN结构的系数,并将其应用于所提出的神经接收器结构的参数的估计。仿真结果表明,所提出的技术比现有方案具有显着的性能提升。

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