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An effective and robust approach to Mandarin spoken language understanding in specific domain

机译:在特定领域中有效有效地理解普通话的方法

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This paper describes an effective and robust approach based on finite state word network for Mandarin spoken language understanding (SLU) in specific domain. A kind of syntax for grammar representation is defined to efficiently specify the utterances which may be spoken in a task. Moreover, arbitrary semantic meaning can be added into grammars conveniently. Then, the grammars are complied into a finite state word network, which contains both literal and semantic information defined by the grammars. A robust parser is implemented based on 3-dimensional dynamic programming. Given a transcription from an automatic speech recognition (ASR) system, the parser searches for the best path in the word network that matches the recognition text most closely. The semantic meaning of the transcription can then be extracted from the best path. Experimental results demonstrate the good performance and robustness of the proposed approach on a Mandarin SLU task.
机译:本文描述了一种基于有限状态词网络的有效且鲁棒的方法,用于特定领域的普通话口语理解(SLU)。定义了一种语法表示的语法,以有效地指定在任务中可以说出的话语。此外,可以方便地将任意语义添加到语法中。然后,将语法编译成一个有限状态词网络,该网络包含语法定义的文字和语义信息。鲁棒的解析器是基于3维动态编程实现的。给定来自自动语音识别(ASR)系统的转录,解析器将在单词网络中搜索与识别文本最接近的最佳路径。然后可以从最佳路径中提取转录的语义。实验结果证明了该方法在普通话SLU任务上的良好性能和鲁棒性。

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