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A novel concept of embedding orthogonal basis function expansion in a feedforward neural equaliser

机译:一种新颖的嵌入正交基函数扩展在馈电神经均衡器中的概念

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The proposed neural equaliser structure is based on an orthogonal basis function (OBF) expansion technique, motivated by genetic evolutionary concept, which utilizes a self-breeding approach to evolve new information so as to consolidate the final output.The equaliser structure developed using this novel approach has outperformed the conventional multilayer feedforward neural network (FNN) equaliser with a wide margin and its bit-error-rate performance is close to that of an optimal Bayesian equaliser. Also it learns faster with less training samples.Application of this proposed technique also reduces the structural complexity of a conventional FNN equaliser and has the potential to become a challenging candidate for real-time implementation issue.
机译:所提出的神经均衡器结构基于正交基函数(OBF)扩展技术,由遗传进化概念的激励,它利用自育方法来发展新信息,以便整合最终输出。使用这部小说开发的均衡器结构方法表现优于传统的多层前馈神经网络(FNN)均衡器,具有宽的边距,并且其位误差率性能接近最佳贝叶斯均衡器。此外,它还使用较少的训练样本来学习更快。这种提出的技术的应用还降低了传统的FNN均衡器的结构复杂性,并且有可能成为实时实施问题的具有挑战性的候选者。

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