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Distinguishing Personality Recognition and Quantification of Emotional Features Based on Users' Information Behavior in Social Media

机译:基于用户信息行为的社交媒体中的人格识别与情感特征的量化

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The purpose of this paper is to explore the emotional composition, psychological characteristics, and the consistency between information behavior and attitude of social media users, and to provide reference for online public opinion monitoring, topic detection, and emotional situation evaluation. Based on big-five personality theory and self-difference theory, this paper takes 12,151 Twitter texts during Hurricane Maria as the analysis objects, extracts the personality characteristics of the texts based on convolution neural network, and analyzes the subjectivity and emotional polarity of the texts by Python. Based on the experimental results, this paper analyzes the psychological characteristics and information needs reflected by social media users' information behavior in disaster environment and further verifies and expounds the reasons for the inconsistent information behavior and attitude of social media users in disaster environments.
机译:本文的目的是探讨情绪组成,心理特征和社交媒体用户信息行为和态度的一致性,并为在线公众舆论监测,主题检测和情绪形势评估提供参考。 基于Big-Five人格理论和自我差异理论,本文在飓风Maria期间需要12,151个Twitter文本作为分析对象,基于卷积神经网络提取文本的个性特征,分析了文本的主观性和情感极性 通过Python。 基于实验结果,本文分析了社交媒体用户信息行为在灾害环境中反映的心理特征和信息需求,进一步验证并阐述了灾害环境中社交媒体用户不一致的信息行为和态度的原因。

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