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Using knowledge of misunderstandings to increase the robustness of spoken dialogue systems

机译:利用误会知识提高口语对话系统的健壮性

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This paper proposes a new technique to increase the robustness of spoken dialogue systems employing an automatic procedure that aims to correct frames incorrectly generated by the system's component that deals with spoken language understanding. To do this the technique carries out a training that takes into account knowledge of previous system misunderstandings. The correction is transparent for the user as he is not aware of some mistakes made by the speech recogniser and thus interaction with the system can proceed more naturally. Experiments have been carried out using two spoken dialogue systems previously developed in our lab: Saplen and Viajero, which employ prompt-dependent and prompt-independent language models for speech recognition. The results obtained from 10,000 simulated dialogues show that the technique improves the performance of the two systems for both kinds of language modelling, especially for the prompt-independent language model. Using this type of model the Saplen system increases sentence understanding by 19.54%, task completion by 26.25%, word accuracy by 7.53%, and implicit recovery of speech recognition errors by 20.3%, whereas for the Viajero system these figures increase by 14.93%, 18.06%, 6.98% and 15.63%, respectively.
机译:本文提出了一种新技术,该技术采用自动过程来提高口语对话系统的鲁棒性,该自动过程旨在纠正由处理口语理解的系统组件错误生成的帧。为此,该技术将考虑到先前对系统的误解的知识进行培训。该校正对于用户是透明的,因为他不知道语音识别器所犯的一些错误,因此与系统的交互可以更自然地进行。实验是使用以前在我们实验室中开发的两个口语对话系统进行的:Saplen和Viajero,它们使用依赖于提示的语言模型和与提示无关的语言模型进行语音识别。从10,000个模拟对话中获得的结果表明,该技术提高了两种系统在两种语言建模方面的性能,特别是对于与提示无关的语言模型。使用这种模型,Saplen系统的句子理解能力提高了19.54%,任务完成率提高了26.25%,单词准确性提高了7.53%,语音识别错误的隐式恢复能力提高了20.3%,而Viajero系统的数字提高了14.93%,分别为18.06%,6.98%和15.63%。

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