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On the use of radial basis function networks for nonlinear speech processing

机译:关于非线性语音处理的径向基函数网络的使用

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In this paper, nonlinear prediction of speech is performed by using a radial basis function (RBF) network. The RBF network has the parameters: (1) dimension of the input vector; (2) number of hidden nodes; (3) basis function; (4) centers; (5) widths and (6) weights to be selected. The complexity and the performance heavily depend on the input dimension and the number of centers. Reduction of complexity while maintaining the performance by decreasing both is still an open problem. The hierarchically self-organizing algorithm, which automatically adjusts the number of centers, with a dynamical systems approach is suggested as a solution. This algorithm is compared to standard approaches vis extensive computer simulations.
机译:在本文中,通过使用径向基函数(RBF)网络来执行语音的非线性预测。 RBF网络具有参数:(1)输入向量的维度; (2)隐藏节点数量; (3)基本功能; (4)中心; (5)选择宽度和(6)重量。复杂性和性能大量取决于输入维度和中心的数量。通过减少减少性能的同时减少复杂性仍然是一个公开问题。自动调整中心数量的分层自组织算法,具有动态系统方法是一种解决方案。将该算法与标准方法进行比较,VIS广泛的计算机模拟。

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