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Method and apparatus for the automatic determination of phonological rules as for a continuous speech recognition system

机译:用于连续语音识别系统的自动确定语音规则的方法和设备

摘要

A continuous speech recognition system includes an automatic phonological rules generator which determines variations in the pronunciation of phonemes based on the context in which they occur. This phonological rules generator associates sequences of labels derived from vocalizations of a training text with respective phonemes inferred from the training text. These sequences are then annotated with their phoneme context from the training text and clustered into groups representing similar pronunciations of each phoneme. A decision tree is generated using the context information of the sequences to predict the clusters to which the sequences belong. The training data is processed by the decision tree to divide the sequences into leaf-groups representing similar pronunciations of each phoneme. The sequences in each leaf-group are clustered into sub-groups represent­ing respectively different pronunciations of their corresponding phoneme in a give context. A Markov model is generated for each sub-group. The various Markov models of a leaf-group are combined into a single compound model by assigning common initial and final states to each model. The compound Markov models are used by a speech recognition system to analyze an unknown sequence of labels given its context.
机译:连续语音识别系统包括自动语音规则生成器,该自动语音规则生成器基于音素发生的上下文来确定音素发音的变化。该语音规则生成器将源自训练文本的发声的标签序列与从训练文本推断出的各个音素相关联。然后,将这些序列与来自训练文本的音素上下文一起注释,并聚类为代表每个音素相似发音的组。使用序列的上下文信息生成决策树,以预测序列所属的聚类。训练数据由决策树处理,以将序列分为代表每个音素相似发音的叶组。每个叶组中的序列被聚类为子组,分别代表给定上下文中其对应音素的不同发音。为每个子组生成一个马尔可夫模型。通过为每个模型分配共同的初始状态和最终状态,可以将叶组的各种Markov模型组合为单个复合模型。语音识别系统使用复合Markov模型分析给定上下文的未知标签序列。

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