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Converted Lattice-Based Chinese Spontaneous Speech Retrieval Based on Mutual Information Confidence Measure

机译:基于互信置信度的基于格转换的中文自发语音检索

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Nowadays rapid and accurate speech retrieval techniques based on semantics are desired for the overwhelming amounts of speech data. In this paper we mainly study a converted lattice-based approach for Chinese spontaneous speech retrieval. A new confidence measure method is proposed based on context mutual information. In our knowledge, it is firstly used in a lattice construction for speech indexing. The method can take full advantage of the mutual information between words in order to describe the language model more exactly. Our experiment results show that the proposed method in this paper outperforms both posterior probability based method and N-best based method. And our best system achieves a FOM of 81.2% on a task of spontaneous Chinese speech retrieval.
机译:如今,对于大量的语音数据,需要基于语义的快速,准确的语音检索技术。在本文中,我们主要研究一种基于转换格的中文自发语音检索方法。提出了一种基于上下文互信息的置信度度量方法。据我们所知,它首先被用于语音索引的格构结构中。该方法可以充分利用单词之间的相互信息,以便更准确地描述语言模型。实验结果表明,本文提出的方法优于基于后验概率的方法和基于N-best的方法。我们的最佳系统在自发的中文语音检索任务上实现了81.2%的FOM。

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