Title: | Emotions classification on social media comments using machine learning and deep learning models |
Author(s): | Nguyễn Đôn Đức |
Advisor(s): | Đặng Ngọc Hoàng Thành |
Keywords: | Sentiment Analysis; Facebook; SVM.; Logistic Regression; BiLSTM. |
Abstract: | This research addresses emotion recognition in Vietnamese text using traditional machine learning (SVM, Logistic Regression) and deep learning (MLP, BiLSTM) models. Key contributions include a comprehensive emotion recognition pipeline with preprocessing techniques like stopword removal, teencode normalization, and emoji handling. The study demonstrates that TF-IDF embeddings yield high performance in traditional models, while BiLSTM with Word2Vec excels in capturing sequential relationships. The models were deployed on Streamlit Cloud for real-time emotion prediction. This work highlights the potential applications of this research in Vietnamese emotion analysis on social, supporting businesses and researchers in understanding user opinions effectively |
Issue Date: | 2025 |
Publisher: | University of Economics Ho Chi Minh City |
Series/Report no.: | Giải thưởng Nhà nghiên cứu trẻ UEH 2025 |
URI: | https://digital.lib.ueh.edu.vn/handle/UEH/74942 |
Appears in Collections: | Nhà nghiên cứu trẻ UEH
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