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Emotion Recognition of Emoticons Based on Character Embedding

机译:基于字符嵌入的表情符号情感识别

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This paper proposes a method for estimating the emotions expressed by emoticons based on a distributed representation of the character meanings of the emoticon. Existing studies on emoticons have focused on extracting the emoticons from texts and estimating the associated emotions by separating them into their constituent parts and using the combination of parts as the feature. Applying a recently developed technique for word embedding, we propose a versatile approach to emotion estimation from emoticons by training the meanings of the characters constituting the emoticons and using them as the feature unit of the emoticon. A cross-validation test was conducted for the proposed model based on deep convolutional neural networks using distributed representations of the characters as the feature. Results showed that our proposed method estimates the emotion of unknown emoticons with a higher F1-score than the baseline method based on character n-grams.
机译:本文提出了一种基于表情符号特征含义的分布式表示方法来估计表情符号表达的情绪。现有的表情符号研究集中于从文本中提取表情符号,并通过将表情符号分离为组成部分并使用部分组合作为特征来估计相关的情感。应用最近开发的词嵌入技术,我们通过训练构成表情符号的字符的含义并将其用作表情符号的特征单元,提出了一种从表情符号进行情感估计的通用方法。基于字符的分布式表示作为特征的,基于深度卷积神经网络的拟议模型进行了交叉验证测试。结果表明,基于字符n元语法,我们提出的方法估计的F1得分高于基线方法,其未知表情的情感程度得到了提高。

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