Emotion Analysis from Turkish Tweets Using Deep Neural Networks

dc.contributor.authorTocoglu M.A.
dc.contributor.authorOzturkmenoglu O.
dc.contributor.authorAlpkocak A.
dc.date.accessioned2024-07-22T08:09:00Z
dc.date.available2024-07-22T08:09:00Z
dc.date.issued2019
dc.description.abstractText data analysis of social media is becoming more and more important since it includes the most recent information on what people think about. Likewise, emotion is one of the most valuable parts of human communication, emotion analysis is a type of information extraction process which identifies the emotional states of a given text. In this study, we investigated the performance of deep neural networks on emotion analysis from Turkish tweets. For this, we examined three different deep learning architectures including artificial neural network (ANN), convolutional neural network (CNN) and recurrent neural network (RNN) with long short-Term memory (LSTM). Besides, we curated a dataset of Turkish tweets and annotated each tweet automatically for six emotion categories using a lexicon-based approach. For the evaluation, we conducted a set of experiments for each architecture. The results showed that the lexicon-based automatic annotation of tweets is valid. Secondly, ANN produced the worst result as expected, and CNN resulted in the highest score of 0.74 in terms of accuracy measure. Experiments also showed that our proposed approach for emotion analysis of tweets in Turkish performs better than state-of-The-Art in this topic. © 2013 IEEE.
dc.identifier.DOI-ID10.1109/ACCESS.2019.2960113
dc.identifier.issn21693536
dc.identifier.urihttp://akademikarsiv.cbu.edu.tr:4000/handle/123456789/14611
dc.language.isoEnglish
dc.publisherInstitute of Electrical and Electronics Engineers Inc.
dc.rightsAll Open Access; Gold Open Access
dc.subjectData mining
dc.subjectDeep learning
dc.subjectInformation retrieval
dc.subjectLearning systems
dc.subjectLong short-term memory
dc.subjectNetwork architecture
dc.subjectSocial networking (online)
dc.subjectAutomatic annotation
dc.subjectConvolutional neural network
dc.subjectEmotion analysis
dc.subjectHuman communications
dc.subjectLearning architectures
dc.subjectRecurrent neural network (RNN)
dc.subjectText mining
dc.subjectTurkish texts
dc.subjectDeep neural networks
dc.titleEmotion Analysis from Turkish Tweets Using Deep Neural Networks
dc.typeArticle

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