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Tracking and recognizing emotions in short text messages from online chatting services

机译:跟踪和识别来自在线聊天服务的短信中的情绪

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摘要

To automate the process of emotion recognition, in this study, we develop a computational approach for continuously tracking and analyzing users' emotions while chatting online. Our work has several unique features: it provides relative probabilities of possible emotions for a word, constructs a distribution for each chatting message accordingly, performs a clustering procedure for the message distribution, and aggregates the emotions of continuous chatting sentences to draw the conclusion. To evaluate the proposed approach, we conducted experiments in two phases. The first phase was to evaluate the effectiveness of the proposed computational approach in analyzing the chatting sentences. The participants were asked to focus on tagging emotions toward each sentence for a pre-designed dialogue. The second phase involves a real-time chatting between two online users. The participants were asked to choose topics and freely chat with each other. The messages were analyzed, and the results were provided to the users for their evaluations. The results show that our approach is both effective and efficient in tracking the emotions of chatting users. Additional analyses and further discussions were carried out to further evaluate the quantitative experimental results. All the findings confirmed the usefulness and feasibility of the presented approach.
机译:为了使情感识别过程自动化,在本研究中,我们开发了一种计算方法,用于在在线聊天时连续跟踪和分析用户的情感。我们的工作具有几个独特的功能:它提供了一个单词可能出现的情绪的相对概率,相应地为每个聊天消息构造了一个分布,为消息分布执行了聚类过程,并汇总了连续聊天语句的情绪以得出结论。为了评估提出的方法,我们分两个阶段进行了实验。第一阶段是评估所提出的计算方法在分析聊天句子中的有效性。要求参与者集中精力为每个句子添加情感,以进行预先设计的对话。第二阶段涉及两个在线用户之间的实时聊天。要求参与者选择主题并彼此自由聊天。对消息进行了分析,并将结果提供给用户进行评估。结果表明,我们的方法在跟踪聊天用户的情绪方面既有效又有效。进行了额外的分析和进一步的讨论,以进一步评估定量实验结果。所有发现均证实了所提出方法的有用性和可行性。

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