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A novel concept of embedding orthogonal basis function expansion block in a neural equalizer structure for digital communication channel

机译:在数字通信信道的神经均衡器结构中嵌入正交基函数扩展块的新概念

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The proposed neural equalizer structure is based on a novel orthogonal basis function (OBF) expansion technique, motivated by genetic evolutionary concept, which utilizes a self-breeding approach to evolve new information to consolidate the final output. Here, the decision at a feedforward neural network (FNN) node termed as expert opinion of a generation undergoes an orthogonal expansion in two dimensions, where one of the outputs possessing the knowledge base for that generation participates in taking the final decision. Hence, a collective judgment based on the expert opinions evolved from decisions of individual generations gives a more rational and heuristic solution compared to a conventional feedforward neural network (CFNN) structure. Propagation of output error backwards and calculation of local gradients at each node become a difficult task as the OBF block is positioned in between the neurons of different layers. In order to circumvent such situation, a new technique has been evolved. The developed equalizer structure using this concept has outperformed the CFNN equalizer with wide margins. Further their bit-error-rate performances are close to that of Bayesian equalizer, which is optimal in the theoretic sense. Application of this proposed technique also reduces the structural and computational complexity of conventional neural equalizers. Hence, this efficient equalizer structures suitable for digital communication channels have the potential for real-time implementation in DSP, FPGA processors also.
机译:拟议的神经均衡器结构基于一种新的正交基函数(OBF)扩展技术,该技术受遗传进化概念的启发,利用自育方法进化新信息来巩固最终输出。在这里,前向神经网络(FNN)节点的决策被称为一代专家的意见在二维上进行正交扩展,其中拥有该一代知识库的输出之一参与做出最终决策。因此,与传统前馈神经网络(CFNN)结构相比,基于从各个代人的决策演变而来的专家意见的集体判断提供了更加合理和启发式的解决方案。随着OBF块位于不同层的神经元之间,输出误差的向后传播和每个节点处的局部梯度的计算成为一项困难的任务。为了避免这种情况,已经开发了一种新技术。使用此概念开发的均衡器结构在宽裕度方面优于CFNN均衡器。此外,它们的误码率性能接近于贝叶斯均衡器,这在理论上是最佳的。该提议技术的应用还降低了常规神经均衡器的结构和计算复杂度。因此,这种适用于数字通信通道的高效均衡器结构具有在DSP和FPGA处理器中实时实现的潜力。

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