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EDA: Enriching Emotional Dialogue Acts using an Ensemble of Neural Annotators

机译:EDA:丰富情感对话法用神经注释器的集合

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The recognition of emotion and dialogue acts enriches conversational analysis and help to build natural dialogue systems. Emotion interpretation makes us understand feelings and dialogue acts reflect the intentions and performative functions in the utterances. However, most of the textual and multi-modal conversational emotion corpora contain only emotion labels but not dialogue acts. To address this problem, we propose to use a pool of various recurrent neural models trained on a dialogue act corpus, with and without context. These neural models annotate the emotion corpora with dialogue act labels, and an ensemble annotator extracts the final dialogue act label. We annotated two accessible multi-modal emotion corpora: IEMOCAP and MELD. We analyzed the co-occurrence of emotion and dialogue act labels and discovered specific relations. For example. Accept/Agree dialogue acts often occur with the Joy emotion. Apology with Sadness, and Thanking with Joy. We make the Emotional Dialogue Acts (EDA) corpus publicly available to the research community for further study and analysis.
机译:认识到情感和对话法令丰富会话分析,并帮助建立自然对话制度。情感解释使我们理解感情和对话法案反映了话语中的意图和表演职能。但是,大多数文本和多模态会话情绪上只包含情感标签,而不是对话框。为了解决这个问题,我们建议使用在对话法案中培训的各种复发性神经模型的池,有和没有上下文。这些神经模型用对话法标签注释了情感Corpora,并提取了集成的注释器提取最终对话框标签。我们注释了两个可访问的多模态情绪:IEMocap和Mell。我们分析了情绪和对话法标签的共同发生,发现了具体关系。例如。接受/同意对话行为经常发生在快乐情绪中。道歉悲伤,欢喜快乐。我们使情感对话法案(EDA)被公开为研究界提供进一步研究和分析。

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