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ROBUST RECOGNITION OF SMALL-VOCABULARY TELEPHONE-QUALITY SPEECH

机译:小语音电话质量语音的鲁棒识别

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摘要

Considerable progress has been made in the field of automatic speech recognition in recent years, especially for high-quality (full bandwidth and noise-free) speech. -However, good recognition accuracy is difficult to achieve when the incoming speech is passe.d through a telephone channel. At the same time, the task of speech recognition over telephone lines is growing in importance, as the number of applications of spoken language pfocessing involving telephone speech increases every day. The paper presents our recent work on developing a robust-speaker-independent isolated-spoken word recognition system based on a hybrid approach (classic - artificial neural network). A number of experiments are described and compared in order to evaluate different analysis and recognition techniques that are best suited for a telephone-speech recognition task. In particular, we address the use of RASTA processing (i.e., filtering the temporal trajectories of speech parameters) for increasing the recognition accuracy. Also, we propose a method based on the adaptive filter theory for producing simulated telephone data starting from clean speech databases.
机译:近年来,在自动语音识别领域,尤其是在高质量(全带宽和无噪声)语音方面取得了长足的进步。 -但是,当传入语音通过电话信道传递时,很难实现良好的识别精度。同时,随着涉及电话语音的口语处理的应用每天增加,通过电话线进行语音识别的任务变得越来越重要。本文介绍了我们最近基于混合方法(经典-人工神经网络)开发的与说话者无关的健壮说话者隔离语音识别系统的工作。描述和比较了许多实验,以便评估最适合电话语音识别任务的不同分析和识别技术。特别地,我们致力于使用RASTA处理(即,过滤语音参数的时间轨迹)来提高识别精度。此外,我们提出了一种基于自适应滤波器理论的方法,用于从纯净语音数据库开始生成模拟电话数据。

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