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Emotion Recognition using Sequence Mining

机译:使用序列挖掘的情感识别

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摘要

With the development of human-computer interaction technology, user emotion recognition, as an important factor in the process of natural language communication, has become a hot research topic. Current studies mainly analyze the emotional within a single long sentence, but in real communication, the transmission of information and emotion is more often achieved by multi-round dialogue. In this paper, we construct the emotional sequence between people and people in different scenarios to identify their multi-round conversational emotions, and analyze their emotional changes through sequence mining. This article takes several novels as the analysis corpus, and proceeds the scene segmentation according to the chapters of the novel. Then we analyze the emotional bias of each conversation between different people in each scene, and then construct the emotional matrix between people in each scene. Finally, the LSTM algorithm is used to mine different emotional patterns and changing trends between people compared with machine learning algorithm. Experimental results show that the proposed sequential-based emotion recognition method can recognize the emotions between people very well and predict the future emotional patterns.
机译:随着人机交互技术的发展,作为自然语言交流过程中重要因素的用户情感识别已成为研究的热点。当前的研究主要是分析一个长句子中的情感,但是在真实的交流中,信息和情感的传递通常是通过多轮对话来实现的。在本文中,我们构建了人与人在不同场景下的情感序列,以识别他们的多轮对话情感,并通过序列挖掘来分析他们的情感变化。本文以多本小说作为分析语料,并根据小说的章节进行场景分割。然后,我们分析了每个场景中不同人之间每次对话的情感偏见,然后构造了每个场景中人与人之间的情感矩阵。最后,与机器学习算法相比,LSTM算法用于挖掘不同的情绪模式和人与人之间变化的趋势。实验结果表明,所提出的基于顺序的情感识别方法能够很好地识别人与人之间的情感,并预测未来的情感模式。

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