Progress on Mandarin conversational telephone speech recognition

M. Hwang, X. Lei, Tim Ng, I. Bulyko, Mari Ostendorf, A. Stolcke, Wen Wang, Jing Zheng, V. R. Gadde, M. Graciarena, M. Siu, Yan Huang
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引用次数: 13

Abstract

Over the past decade, there has been good progress on English conversational telephone speech (CTS) recognition, built on the Switchboard and Fisher corpora. In this paper, we present our efforts on extending language-independent technologies into Mandarin CTS, as well as addressing language-dependent issues such as tone. We show the impact of each of the following factors: (a) simplified Mandarin phone set; (b) pitch features; (c) auto-retrieved Web texts for augmenting n-gram training; (d) speaker adaptive training; (e) maximum mutual information estimation; (f) decision-tree-based parameter sharing; (g) cross-word co-articulation modeling; and (h) combining MFCC and PLP decoding outputs using confusion networks. We have reduced the Chinese character error rate (CER) of the BBN-2003 development test set from 53.8% to 46.8% after (a)+(b)+(c)+(f)+(g) are combined. Further reduction in CER is anticipated after integrating all improvements.
普通话会话电话语音识别研究进展
在过去的十年中,基于Switchboard和Fisher语料库的英语会话电话语音(CTS)识别取得了良好的进展。在本文中,我们介绍了将语言无关技术扩展到普通话CTS中的努力,以及解决语言依赖问题,如音调。我们展示了以下每个因素的影响:(a)简体普通话电话机;(b)音高特征;(c)用于增强n-gram训练的自动检索Web文本;(d)说话人适应性训练;(e)最大互信息估计;(f)决策树参数共享;(g)跨词协同发音建模;(h)使用混淆网络组合MFCC和PLP解码输出。将(a)+(b)+(c)+(f)+(g)组合后,我们将BBN-2003开发测试集的汉字错误率(CER)从53.8%降低到46.8%。综合所有改进后,预计CER将进一步降低。
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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