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Pattern recognition mode and reference pattern study mode

机译:模式识别模式和参考模式学习模式

摘要

A speech recognition method according to the present invention uses distances calculated through a variance weighting process using covariance matrixes as the local distances (prediction residuals) between the feature vectors of input syllables/sound elements and predicted vectors formed by different statuses of reference neural prediction models (NPM's) using finite status transition networks. The category to minimize the accumulated value of these local distances along the status transitions of all the prediction models is figured out by dynamic programming, and used as the recognition output. Learning of the reference prediction models used in this recognition method is accomplished by repeating said distance calculating process and the process to correct the parameters of the different statuses and the covariance matrixes of said prediction models in the direction of reducing the distance between the learning patterns whose category is known and the prediction models of the same category as this known category, and what have satisfied prescribed conditions of convergence through these calculating and correcting processes are determined as reference pattern models. IMAGE
机译:根据本发明的语音识别方法使用通过使用协方差矩阵的方差加权过程计算的距离作为输入音节/声音元素的特征向量与由参考神经预测模型的不同状态形成的预测向量之间的局部距离(预测残差)。 (NPM)使用有限状态转换网络。通过动态编程找出使沿着所有预测模型的状态转换沿这些局部距离的累积值最小化的类别,并将其用作识别输出。通过重复所述距离计算过程和在减小学习模式之间的距离的方向上校正所述预测模型的不同状态的参数和协方差矩阵的过程,来完成在该识别方法中使用的参考预测模型的学习。已知类别,并且将与该已知类别相同类别的预测模型以及通过这些计算和校正过程满足规定的收敛条件的预测模型确定为参考模式模型。 <图像>

著录项

  • 公开/公告号JP2979711B2

    专利类型

  • 公开/公告日1999-11-15

    原文格式PDF

  • 申请/专利权人 NIPPON DENKI KK;

    申请/专利号JP19910119086

  • 发明设计人 ISO KENICHI;

    申请日1991-04-24

  • 分类号G10L3/00;G06F15/18;

  • 国家 JP

  • 入库时间 2022-08-22 01:58:12

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