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Method and apparatus for modeling words with multi-arc markov models

机译:用多弧马尔可夫模型对单词建模的方法和装置

摘要

Modeling a word is done by concatenating a series of elemental models to form a word model. At least one elemental model in the series is a composite elemental model formed by combining the starting states of at least first and second primitive elemental models. Each primitive elemental model represents a speech component. The primitive elemental models are combined by a weighted combination of their parameters in proportion to the values of the weighting factors. To tailor the word model to closely represent variations in the pronunciation of the word, the word is uttered a plurality of times by a plurality of different speakers. Constructing word models from composite elemental models, and constructing composite elemental models from primitive elemental models enables word models to represent many variations in the pronunciation of a word. Providing a relatively small set of primitive elemental models for a relatively large vocabulary of words enables models to be trained to the voice of a new speaker by having the new speaker utter only a small subset of the words in the vocabulary.
机译:单词建模是通过串联一系列基本模型以形成单词模型来完成的。系列中的至少一个基本模型是通过组合至少第一和第二基本基本模型的起始状态而形成的复合基本模型。每个原始元素模型代表一个语音成分。通过与加权因子的值成比例地对它们的参数进行加权组合来组合原始元素模型。为了使单词模型适合于紧密地表示单词发音的变化,由多个不同的说话者多次说出单词。从复合元素模型构建单词模型,从原始元素模型构建合成元素模型,使单词模型能够代表单词发音的多种变化。为相对较大的词汇量提供相对较少的原始元素模型集,使得新说话者仅说出词汇中一小部分单词,就可以将模型训练为新说话者的声音。

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