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The Application of Keirsey's Temperament Model to Twitter Data in Portuguese

机译:Keirsey气质模型在葡萄牙语中的应用

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摘要

Temperament is a set of innate tendencies of the mind related with the processes of perception, analysis and decision making. The purpose of this paper is to predict Twitter users temperament based on Portuguese tweets and following Keirsey's model, which classifies the temperament into artisan, guardian, idealist and rational. The proposed methodology uses a Portuguese version of LIWC, which is a dictionary of words, to analyze the context of words, and supervised learning using the KNN, SVM and Random Forests for training the classifiers. The resultant average accuracy obtained was 88.37% for the artisan temperament, 86.92% for the guardian, 55.61% for the idealist, and 69.09% for the rational. For classification using TF-IDF the SVM algorithm obtained the best performance to the artisan temperament with average accuracy of 88.28%.
机译:气质是与感知,分析和决策过程相关的心灵的一系列先天倾向。本文的目的是基于葡萄牙推文和keirsey的模型来预测Twitter用户的气质,这将气质分为工匠,监护人,理想主义者和理性。所提出的方法使用LIWC的葡萄牙版本,这是单词的字典,分析单词的上下文,并使用KNN,SVM和随机林进行监督学习,用于培训分类器。所得术造成的平均准确性为18.37%,守护者的86.92%,理想主义者的55.61%,合理为69.09%。对于使用TF-IDF进行分类,SVM算法将最佳性能与平均精度为88.28%的艺术气质。

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