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Speech Recognition Using context Conditional word Posterior Probabilities

机译:使用上下文条件字后续概率进行语音识别

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In this paper two new scoring schemes for large vocabulary continuous speech recognition are compared. Instead of using the joint probability of a word sequence and a sequence of acoustic observations, we determien the best path through a word graph using posterior word probabilities with or without word context. The exact calulation of the posterior probability for a word sequence implies a sum over all possible word boundaries, which is approximated by a maximum operation in the standard scoring approach. The new scoring scheme using word posterior probabilities could be expected to lead to improved recognition performance, because it involves partial summation over word boundaries. We present experimetnal results on five differnet corpora, the Dutch Arise corpus, the German Verbmobil '98 corpus, the English North American Business '94 20k and 64k development corpora, and the English Broadcast News '96 corpus. It is shown that the Viterbi approxiamtion within words has no efect on standard and word posterior based recognition. Using word posteriro probabilities with an without word context, the relative reduction in word error rate is comparable and ranges between 1.5
机译:在本文中,比较了两个新的词汇连续语音识别的评分方案。而不是使用单词序列的联合概率和一系列声学观察,而是通过使用或没有词上下文的后验词概率来确定最佳路径。字序列的后验概率的精确估计意味着在所有可能的字边界上的总和,其通过标准评分方法中的最大操作来近似。可以预期使用Word后续概率的新评分方案导致改善识别性能,因为它涉及单词边界的部分求和。我们在五个不同的Corpora上提供了实验结果,荷兰·由于德国·麦芽菊'98语料库,英式北美商务'94 20k和64K开发的语料库,以及英国广播新闻'96语料库。结果表明,单词中的维特比近似值在标准和Word后后识别上没有EFECT。使用Word Postiro概率与无字体上下文,字错误率的相对降低是可比的,范围在1.5之间

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