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Selecting Help Messages by Using Robust Grammar Verification for Handling Out-of-Grammar Utterances in Spoken Dialogue Systems

机译:通过使用健壮的语法验证来选择帮助消息以处理口语对话系统中的语法外说话

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We address the issue of out-of-grammar (OOG) utterances in spoken dialogue systems by generating help messages. Help message generation for OOG utterances is a challenge because language understanding based on automatic speech recognition (ASR) of OOG utterances is usually erroneous; important words are often misrecognized or missing from such utterances. Our grammar verification method uses a weighted finite-state transducer, to accurately identify the grammar rule that the user intended to use for the utterance, even if important words are missing from the ASR results. We then use a ranking algorithm, RankBoost, to rank help message candidates in order of likely usefulness. Its features include the grammar verification results and the utterance history representing the user's experience.
机译:我们通过生成帮助消息来解决口语对话系统中的语法外(OOG)语音问题。面向OOG语音的帮助消息生成是一个挑战,因为基于OOG语音的自动语音识别(ASR)的语言理解通常是错误的。重要话语经常被这种话语误解或遗漏。我们的语法验证方法使用加权有限状态转换器,即使ASR结果中缺少重要的单词,也可以准确地识别用户打算用于发声的语法规则。然后,我们使用排名算法RankBoost对可能有用的顺序对帮助消息候选进行排名。它的功能包括语法验证结果和代表用户体验的发声历史。

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