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Lattice-Based ASR-MT Interface for Speech Translation

机译:基于格的语音翻译ASR-MT接口

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摘要

The usual approach to improve the interface between automatic speech recognition (ASR) and machine translation (MT) is to use ASR word lattices for translation. In comparison with the previous research along this line, this paper presents an efficient algorithm for lattice-based search in MT. This algorithm utilizes confusion network information to enable phrase-level reordering, and is also able to process general lattices. The proposed search is not constrained to be monotonic; thus, it is able to perform the same type of reordering given lattice input as any statistical phrase-based search algorithm with a single sentence input. Using the concept described in this paper, we are able to significantly improve speech translation results on several small and large vocabulary tasks. The improvements of the MT quality as measured by BLEU are as high as 5% relative. We also show that the proposed lattice-based translation can outperform state-of-the-art translation of confusion networks and has advantages in terms of translation speed. Furthermore, we propose and evaluate a novel approach that shares the benefits of lattice-based translation with those translation systems which are not designed to process word lattices.
机译:改善自动语音识别(ASR)和机器翻译(MT)之间的接口的常用方法是使用ASR词格进行翻译。与这方面的先前研究相比,本文提出了一种有效的MT网格搜索算法。该算法利用混淆网络信息来启用短语级别的重新排序,并且还能够处理常规晶格。提议的搜索不限于单调。因此,它能够对给定的格点输入执行与任何基于单个短语输入的基于统计短语的搜索算法相同类型的重排序。使用本文中描述的概念,我们能够在几个大小词汇量任务上显着改善语音翻译结果。通过BLEU测得的MT质量改善相对高达5%。我们还表明,所提出的基于格的翻译可以胜过最新的混淆网络翻译,并且在翻译速度方面具有优势。此外,我们提出并评估了一种新颖的方法,该方法与那些不旨在处理单词格的翻译系统共享基于格的翻译的好处。

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