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Speaker-Consistent Parsing for Speaker-Independent Continuous Speech Recognition

机译:与说话者无关的连续语音识别中的说话者一致性分析

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摘要

This paper describes a novel speaker-independent speech recognition method, called "speaker-consistent parsing", which is based on an intra-speaker correlation called the speaker-consistency principle. We focus on the fact that a sentence or a string of words is uttered by an individual speaker even in a speaker-independent task. Thus, the proposed method searches through speaker variations in addition to the contents of utterances. As a result of the recognition process, an appropriate standard speaker is selected for speaker adaptation. This new method is experimentally compared with a conventional speaker-independent speech recognition method. Since the speaker-consistency principle best demonstrates its effect with a large number of training and test speakers, a small-scale experiment may not fully exploit this principle. Nevertheless, even the results of our small-scale experiment show that the new method significantly outperforms the conventional method. In addition, this framework's speaker selection mechanism can drastically reduce the likelihood map computation.
机译:本文介绍了一种新颖的与说话者无关的语音识别方法,称为“说话者一致性解析”,它基于称为“说话者一致性”原理的说话者内部相关性。我们关注的事实是,即使在独立于说话者的任务中,单个说话者也会说出一句话或一串字。因此,除了语音内容之外,所提出的方法还搜索说话者的变化。作为识别过程的结果,选择了合适的标准说话人用于说话人适应。实验上将该新方法与传统的独立于说话者的语音识别方法进行了比较。由于说话者一致性原则可以通过大量的培训和测试说话者来最好地展示其效果,因此,小规模的实验可能无法充分利用该原则。但是,即使是我们的小型实验结果也表明,该新方法明显优于传统方法。此外,该框架的说话人选择机制可以大大减少似然图的计算。

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