![]() J Inf Syst Telecommun 3:135–141Īsgarian E, Kahani M, Sharifi S (2018) The impact of sentiment features on the sentiment polarity classification in Persian reviews. RANLP 9–16Īlimardani S, Abdollah Aghaie A (2015) Opinion mining in Persian language using supervised algorithms. Īmiri F, Scerri S and Khodashahi MH (2015) Lexicon-based Sentiment Analysis for Persian Text. ![]() Results show that when the training and test data are from different domains an accuracy of 68% is achieved, which is higher than other shallow methodologies and deep learning methods for determining the sentiments of social media comments in different domains.Īkhoundzade R, Devin K (2019) Persian sentiment lexicon expansion using unsupervised learning methods," 9th Int. The proposed model has been evaluated based on different test data belonging to different time-periods and topic domains and results have been compared with recent methods for the task of sentiment analysis for three different scenarios. The generated corpus has been gathered from 28,710 Instagram comments in different topic domains and have been labeled as either negative or positive comments. ParsBERT has been fine-tuned on a Persian corpus that has been generated for the purpose of this study. Since social media comments have different domains, it is necessary for the proposed model to classify sentiments of comments in different domains. The proposed model applies a transformer-based model, ParsBERT, to classify the sentiments of social media comments. This research presents an architecture to analyze a limited resource language, Persian language, and focuses on the analysis of social media, consisting of informal comments across different domains. Social media platforms that allow consumers to share and publish content, are enriched with opinionating information that many analytical researches are currently, however, limited to a specific domain. ![]() Sentiment analysis is the computational study of the emotions, attitudes and opinions of humans through the extraction of meaningful information. ![]()
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