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I miss you babe: Analyzing Emotion Dynamics During COVID-19 Pandemic

机译:我想念你的宝贝:在Covid-19流行病中分析情绪动态

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With the world on a lockdown due to the COVID-19 pandemic, this paper studies emotions expressed on Twitter. Using a combined strategy of time series analysis of emotions augmented by tweet topics, this study provides an insight into emotion transitions during the pandemic. After tweets are annotated with dominant emotions and topics, a time-series emotion analysis is used to identify disgust and anger as the most commonly identified emotions. Through longitudinal analysis of each user, we construct emotion transition graphs, observing key transitions between disgust and anger, and self-transitions within anger and disgust emotional states. Observing user patterns through clustering of user longitudinal analyses reveals emotional transitions fall into four main clusters: (1) erratic motion over short period of time, (2) disgust → anger, (3) optimism → joy. (4) erratic motion over a prolonged period. Finally, we propose a method for predicting users subsequent topic, and by consequence their emotions, through constructing an Emotion Topic Hidden Markov Model, augmenting emotion transition states with topic information. Results suggests that the predictions fare better than baselines, spurring directions of predicting emotional states based on Twitter posts.
机译:由于Covid-19大流行,在锁定上,本文研究了Twitter上表达的情绪。使用Tweet主题增强的时序序列分析的组合策略,这项研究提供了在大流行期间的情感转换的洞察力。在推特下用主导情绪和主题注释后,使用时间序列情感分析来识别厌恶和愤怒,作为最常见的情绪。通过对每个用户的纵向分析,我们构建情感过渡图,观察厌恶和愤怒之间的关键过渡,以及愤怒和厌恶情绪状态的自我过渡。通过用户纵向分析的聚类观察用户模式揭示了情绪转换分为四个主要簇:(1)在短时间内不稳定运动,(2)厌恶→愤怒,(3)乐观→喜悦。 (4)长时间的不稳定动作。最后,我们提出了一种方法来预测用户随后的主题,并因此通过构建情感主题隐藏的马尔可夫模型来推动与主题信息增强情绪转换状态。结果表明,预测比基线更好,刺激了基于Twitter帖子预测情绪状态的方向。

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