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DISCRIMINATIVELY TRAINED MIXTURE MODELS IN CONTINUOUS SPEECH RECOGNITION

机译:连续语音识别中经过区别训练的混合模型

摘要

A method of a continuous speech recognition system is given for discriminatively training hidden Markov for a system recognition vocabulary. An input word phrase is converted into a sequence of representative frames. A correct state sequence alignment with the sequence of representative frames is determined, the correct state sequence alignment corresponding to models of words in the input word phrase. A plurality of incorrect recognition hypotheses is determined representing words in the recognition vocabulary that do not correspond to the input word phrase, each hypothesis being a state sequence based on the word models in the acoustic model database. A correct segment of the correct word model state sequence alignment is selected for discriminative training. A frame segment of frames in the sequence of representative frames is determined that corresponds to the correct segment. An incorrect segment of a state sequence in an incorrect recognition hypothesis is selected, the incorrect segment corresponding to the frame segment. A discriminative adjustment is performed on selected states in the correct segment and the corresponding states in the incorrect segment.
机译:给出了一种连续语音识别系统的方法,以区别地训练隐马尔可夫以识别系统词汇。输入的单词短语将转换为代表帧序列。确定与代表性帧的序列的正确状态序列比对,正确的状态序列比对对应于输入单词短语中的单词模型。确定多个错误识别假设,这些错误识别假设表示识别词汇表中与输入单词短语不对应的单词,每个假设都是基于声学模型数据库中单词模型的状态序列。选择正确的单词模型状态序列比对的正确片段以进行判别训练。确定代表帧序列中的帧的帧段,该帧段对应于正确的段。选择了错误识别假设中的状态序列的错误段,该错误段对应于帧段。对正确段中的选定状态和不正确段中的相应状态进行区分性调整。

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