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A mapping neural network and its application to voiced-unvoiced-silence classification

机译:映射神经网络及其在浊音沉默分类中的应用

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A mapping neural network which combines unsupervised and supervised training is described and its application to the classification of segments of speech to voiced, unvoiced, and silence (V-UV-S) is demonstrated through computer simulations. The network uses a dynamic variation of competitive learning in the unsupervised layer followed by a supervised associative layer. When used to solve the V-UV-S classification problem, the network outperforms a network based on the frequency sensitive competitive learning.
机译:将描述了组合无监督和监督培训的映射神经网络,并通过计算机仿真证明了其对浊音,清音和沉默(V-UV-S)的语音分类的应用。该网络在无监督层中使用竞争学习的动态变化,然后是受监督的关联层。当用于解决V-UV-S分类问题时,网络基于频率敏感的竞争学习胜过网络。

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