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Neural nets filters: integrated coding and signaling in communication systems

机译:神经网络过滤器:通信系统中的集成编码和信令

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摘要

The authors describe the potential of neural net filters in communication systems. They consider applications of neural networks in those fields associated with communications where time-varying linear systems need to be used; the structure of the neural net considered is the multiple-layer feed-forward network. It is shown that an FIR (finite impulse response) filter with finite representation of its output could be viewed as a two-layer neural net. Experiments on the equalization of nonlinear communication channels with memory are reported, demonstrating the potential of neural networks in integrated tools for signal processing and decoding
机译:作者描述了神经网络过滤器在通信系统中的潜力。他们考虑了神经网络在需要使用时变线性系统的与通讯相关的领域中的应用。所考虑的神经网络的结构是多层前馈网络。结果表明,具有有限输出表示的FIR(有限脉冲响应)滤波器可以看作是两层神经网络。报告了使用存储器使非线性通信通道均衡的实验,证明了神经网络在信号处理和解码集成工具中的潜力

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