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Robust lecture speech translation for speech misrecognition and its rescoring effect from multiple candidates

机译:健壮的演讲语音翻译,可解决语音错误识别问题以及多种候选人的评分效果

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We describe a scheme to translate spoken English lectures into Japanese consisting of a deep neural network based English automatic speech recognition system (ASR) and an English to Japanese phrase-based statistical machine translation system (SMT). The bad influence of speech misrecognition for the translation model is focused. For coping with bad influence caused by speech misrecognition, we utilized the actual misrecognition results as a parallel corpus. We prepared four ASR systems. Pairs of the results including speech misrecognition and the correct translation into target language are added to an original parallel corpus. When the sentences including misrecognition were added to an original corpus, the baseline model was improved. Next, we prepared speech misrecognition results by using a simulated ASR system. This method also improved the baseline system by about 2.0 BLEU as well as actual ASR systems. Finally, we investigated the effectiveness of optimal selection from multiple candidates / outputs by rescoring based on language models. We found that the performance was improved further by 2.0 ~ 3.0 BLEU, if we can select the optimal candidate.
机译:我们描述了一种将口语英语讲座翻译成日语的方案,该方案包括基于深度神经网络的英语自动语音识别系统(ASR)和基于英语到日语短语的统计机器翻译系统(SMT)。重点关注了语音识别错误对翻译模型的不利影响。为了应对由语音识别错误引起的不良影响,我们将实际的识别错误结果用作平行语料库。我们准备了四个ASR系统。成对的结果(包括语音识别错误和正确翻译成目标语言)将添加到原始并行语料库中。当将包括误识别的句子添加到原始语料库时,基线模型得到了改进。接下来,我们通过使用模拟的ASR系统准备了语音识别错误的结果。该方法还将基线系统和实际的ASR系统提高了约2.0 BLEU。最后,我们通过基于语言模型的评分研究了从多个候选/输出中进行最优选择的有效性。我们发现,如果可以选择最佳候选者,则性能会进一步提高2.0〜3.0 BLEU。

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