Bag of n-gram driven decoding for LVCSR system harnessing

Fethi Bougares, Y. Estève, P. Deléglise, G. Linarès
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引用次数: 10

Abstract

This paper focuses on automatic speech recognition systems combination based on driven decoding paradigms. The driven decoding algorithm (DDA) involves the use of a 1-best hypothesis provided by an auxiliary system as another knowledge source in the search algorithm of a primary system. In previous studies, it was shown that DDA outperforms ROVER when the primary system is guided by a more accurate system. In this paper we propose a new method to manage auxiliary transcriptions which are presented as a bag-of-n-grams (BONG) without temporal matching. These modifications allow to make easier the combination of several hypotheses given by different auxiliary systems. Using BONG combination with hypotheses provided by two auxiliary systems, each of which obtained more than 23% of WER on the same data, our experiments show that a CMU Sphinx based ASR system can reduce its WER from 19.85% to 18.66% which is better than the results reached with DDA or classical ROVER combination.
用于LVCSR系统控制的n-gram驱动解码包
本文主要研究基于驱动解码范式的语音自动识别系统组合。驱动解码算法(DDA)是将辅助系统提供的1-best假设作为主系统搜索算法的另一个知识来源。先前的研究表明,当主系统由更精确的系统引导时,DDA的性能优于ROVER。在本文中,我们提出了一种新的方法来管理辅助转录,这些辅助转录以n-grams袋(BONG)的形式呈现,没有时间匹配。这些修改可以使不同辅助系统给出的几个假设的组合更容易。我们的实验表明,基于CMU Sphinx的ASR系统可以将其WER从19.85%降低到18.66%,优于DDA或经典ROVER组合所达到的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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