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Emotion Recognition from Text Stories Using an Emotion Embedding Model

机译:使用情感嵌入模型从文本故事中识别情感

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In this paper, we analyze emotions in a story text using an emotion embedding model. Firstly, we collected 144,701 tweets, and each tweet is given an emotional hashtag. Using the emotion hashtag as an emotion label, we built a CNN model for emotion classification. We then extracted the embedding model created during the learning process. We then extracted word embedding layer created during the emotion classification learning process. We defined this as an ‘Emotion embedding model’, and applied it to classify story text emotions. The story text used in emotion analysis was ROC story data, and those story sentences are classified into eight emotions based on plutchik’s emotion model.
机译:在本文中,我们使用情感嵌入模型来分析故事文本中的情感。首先,我们收集了144,701条Tweet,并为每条Tweet分配了情感标签。使用情感主题标签作为情感标签,我们建立了用于情感分类的CNN模型。然后,我们提取了在学习过程中创建的嵌入模型。然后,我们提取了在情感分类学习过程中创建的单词嵌入层。我们将其定义为“情感嵌入模型”,并将其应用于对故事文本情感进行分类。情感分析中使用的故事文本是ROC故事数据,并且根据plutchik的情感模型将这些故事句子分为八种情感。

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