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A spoken dialogue system with situation and emotion detection based on anthropomorphic learning for warming healthcare d

机译:一种口头对话系统,基于拟人学习温暖医疗保健D的情感和情感检测

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This work presents a spoken dialogue system with situation and emotion detection based on anthropomorphic learning for warming healthcare. To provide more warming feedback of the system, we combine situation and emotion detection with spoken dialogue system. Situation and emotion detection are based on lexical category using Partial-Matching Spoken Sentence Retrieval (PMSSR). Moreover, an anthropomorphic learning mechanism is proposed to improve the performance of emotion and situation detection. The mechanism based on out-of-vocabulary (OOV) detection is used to update emotion and situation database with new lexicon through interaction with user and internet. The experimental results show that the anthropomorphic learning mechanism increases the accuracy rate of situation and emotion detection by 30% and 20%, respectively.
机译:这项工作提出了一种口头对话系统,基于拟人学习的温暖医疗保健的拟人学习。 为了提供更温暖的系统反馈,我们将情况和情绪检测与口头对话系统相结合。 情况和情绪检测基于使用部分匹配的口语句子检索(PMSSR)的词汇类别。 此外,提出了一种拟人学习机制来改善情绪和情况检测的性能。 基于词汇流(OOV)检测的机制用于通过与用户和互联网的互动,使用新的词典更新情绪和情况数据库。 实验结果表明,拟人学习机制分别增加了30%和20%的情况和情绪检测的准确率和情绪检测。

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