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Lexicon-building methods for an acoustic sub-word based speech recognizer

机译:基于声学子词的语音识别器的词汇构建方法

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The use of an acoustic subword unit (ASWU)-based speech recognition system for the recognition of isolated words is discussed. Some methods are proposed for generating the deterministic and the statistical types of word lexicon. It is shown that the use of a modified k-means algorithm on the likelihoods derived through the Viterbi algorithm provides the best deterministic-type of word lexicon. However, the ASWU-based speech recognizer leads to better performance with the statistical type of word lexicon than with the deterministic type. Improving the design of the word lexicon makes it possible to narrow the gap in the recognition performances of the whole word unit (WWU)-based and the ASWU-based speech recognizers considerably. Further improvements are expected by designing the word lexicon better.
机译:讨论了基于声学子词单元(ASWU)的语音识别系统对孤立词的识别的使用。提出了一些方法来生成词词典的确定性和统计类型。结果表明,对通过维特比算法得出的似然性使用改进的k均值算法可提供最佳的确定性类型的词词典。但是,基于ASWU的语音识别器使用统计字词词典比使用确定性字词具有更好的性能。改进单词词典的设计可以大大缩小基于整个单词单元(WWU)和基于ASWU的语音识别器的识别性能差距。可以通过更好地设计单词词典来期望进一步的改进。

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