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Towards Improved Deep Contextual Embedding for the identification of Irony and Sarcasm

机译:旨在识别反讽和讽刺的改进的深度上下文嵌入

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Humans use tonal stress and gestural cues to reveal negative feelings that are expressed ironically using positive or intensified positive words when communicating vocally. However, in textual data, like posts on social media, cues on sentiment valence are absent, thus making it challenging to identify the true meaning of utterances, even for the human reader. For a given post, an intelligent natural language processing system should be able to identify whether a post is ironic/sarcastic or not. Recent work confirms the difficulty of detecting sarcastic/ironic posts. To overcome challenges involved in the identification of sentiment valence, this paper presents the identification of irony and sarcasm in social media posts through transformer-based deep, intelligent contextual embedding – T-DICE – which improves noise within contexts. It solves the language ambiguities such as polysemy, semantics, syntax, and words sentiments by integrating embeddings. T-DICE is then forwarded to attention-based Bidirectional Long Short Term Memory (BiLSTM) to find out the sentiment of a post. We report the classification performance of the proposed network on benchmark datasets for #irony & #sarcasm. Results demonstrate that our approach outperforms existing state-of-the-art methods.
机译:人类使用声调和手势暗示来揭示负面感觉,这些声音在进行语音交流时会用正面的或强化的正面词语来讽刺地表达。但是,在文本数据(如社交媒体中的帖子)中,缺少关于情感价的线索,因此,即使对于人类读者而言,也很难确定话语的真实含义。对于给定的帖子,智能自然语言处理系统应该能够识别帖子是否具有讽刺意味/讽刺意味。最近的工作证实了检测讽刺/讽刺帖子的难度。为了克服在识别情感价值时所遇到的挑战,本文介绍了通过基于变压器的深度智能情境嵌入(T-DICE)来识别社交媒体帖子中的讽刺和嘲讽,T-DICE可以改善上下文中的噪音。它通过集成嵌入解决了多义性,语义,语法和单词情感等语言歧义。然后,将T-DICE转发到基于注意力的双向长期短期记忆(BiLSTM),以查找帖子的情绪。我们在#irony和#sarcasm的基准数据集上报告了拟议网络的分类性能。结果表明,我们的方法优于现有的最新方法。

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