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Speaker verification routines for ISDN and UPT access and security using artificial neural networks and time encoded speech (TES) data

机译:使用人工神经网络和时间编码语音(TES)数据的ISDN和UPT访问和安全性的说话人验证例程

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An initial investigation into the use of time encoded speech (TES) fixed size, fixed dimension A-matrices as the input layer of a simple fast artificial neural network (FANN) configured to identify the acoustic output of ten cooperative male imposters each articulating twenty versions of the same phrase produced very favourable indications which led to the work described in the paper. It would appear that the TES data structures involved may be well matched to the demands of artificial neural network architectures when these are applied to some of the important time-sequence learning requirements inherent in the significant task of speaker verification. Such a combination may well enable these very powerful FANN analysis and classification tools to be applied to advantage to the spoken utterances of voice network users under realistic operational conditions.
机译:使用时间固定语音(TES)固定大小,固定维度A矩阵作为简单快速人工神经网络(FANN)的输入层的初步调查,该网络被配置为识别十个协作男性冒名顶替者的声音输出,每个发音者都发音了二十个版本相同的短语的使用产生了非常有利的指示,从而导致了本文中描述的工作。当将这些TES数据结构应用于说话人验证这一重要任务中固有的一些重要时间序列学习要求时,似乎可以很好地匹配人工神经网络体系结构的要求。这样的组合可以很好地使这些功能非常强大的FANN分析和分类工具能够在实际操作条件下有利于语音网络用户的语音。

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