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Phone-to-word decoding through statistical machine translation and complementary system combination

机译:通过统计机器翻译和互补系统组合进行电话到单词的解码

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In this paper, phone-to-word transduction is first investigated by coupling a speech recognizer, generating for each speech segment a phone sequence or a phone confusion network, with the efficient decoder of confusion networks adopted by MOSES, a popular statistical machine translation toolkit. Then, system combination is investigated by combining the outputs of several conventional ASR systems with the output of a system embedding phone-to-word decoding through statistical machine translation. Experiments are carried out in the context of a large vocabulary speech recognition task consisting of transcription of speeches delivered in English during the European Parliament Plenary Sessions (EPPS). While only a marginal performance improvements is achieved in system combination experiments when the output of the phone-to-word transducer is included in the combination, partial results show a great potential for improvements.
机译:在本文中,首先通过耦合语音识别器,为每个语音段生成电话序列或电话混淆网络以及流行的统计机器翻译工具MOSES所采用的混淆网络的高效解码器,来研究电话到词的转导。 。然后,通过将几种常规ASR系统的输出与通过统计机器翻译嵌入电话到单词解码的系统的输出进行组合,来研究系统组合。在大型词汇语音识别任务的背景下进行实验,包括在欧洲议会全体会议(EPPS)期间以英语发表的语音转录。当电话到单词转换器的输出包括在组合中时,虽然在系统组合实验中只能实现少量的性能改进,但部分结果显示出很大的改进潜力。

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