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Cost-Efficient Development of Acoustic Models for Speech Recognition of Related Languages

机译:用于相关语言语音识别的声学模型的经济高效开发

摘要

When adapting an existing speech recognition system to a new language, major development costs are associated with the creation of an appropriate acoustic model (AM). For its training, a certain amount of recorded and annotated speech is required. In this paper, we show that not only the annotation process, but also the process of speech acquisition can be automated to minimize the need of human and expert work. We demonstrate the proposed methodology on Croatian language, for which the target AM has been built via cross-lingual adaptation of a Czech AM in 2 ways: a) using commercially available GlobalPhone database, and b) by automatic speech data mining from HRT radio archive. The latter approach is cost-free, yet it yields comparable or better results in LVCSR experiments conducted on 3 Croatian test sets.
机译:当使现有的语音识别系统适应新的语言时,主要的开发成本与适当的声学模型(AM)的创建相关。为了对其进行培训,需要一定数量的记录和带注释的语音。在本文中,我们表明,不仅注释过程而且语音获取过程都可以自动化,以最大程度地减少人工和专家工作的需求。我们演示了针对克罗地亚语言的拟议方法,该目标方法是通过以下两种方式通过对捷克AM进行跨语言改编而建立的:a)使用市售的GlobalPhone数据库,以及b)通过HRT无线电档案库的自动语音数据挖掘。后一种方法是免费的,但在3个克罗地亚测试装置上进行的LVCSR实验中,其结果可比或更好。

著录项

  • 作者

    Nouza J.; Cerva P.; Kucharova M.;

  • 作者单位
  • 年度 2013
  • 总页数
  • 原文格式 PDF
  • 正文语种 {"code":"en","name":"English","id":9}
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