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research-article

Enhancing the accuracy of transformer-based embeddings for sentiment analysis in social big data

Published: 01 January 2023 Publication History

Abstract

Social media have opened a venue for online users to post and share their opinions in different life aspects, which leads to big data. As a result, sentiment analysis has become a fast-growing field of research in Natural Language Processing (NLP) owing to its central role in analysing the public's opinion in many areas, including advertising, business and marketing. This study proposes a transformer-based approach, which integrates contextualised words with Part-of-Speech (POS) embedding. Then, the enhanced word vector is forwarded to a hybrid deep learning architecture combining a Convolutional Neural Network (CNN) and a Bidirectional Long Short-Term-Memory (BiLSTM) to discover the post's sentiment. Extensive experiments on four review data sets from diverse domains demonstrate that the proposed method outperforms other machine learning approaches in terms of accuracy.

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  1. Enhancing the accuracy of transformer-based embeddings for sentiment analysis in social big data
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            Information & Contributors

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            Published In

            cover image International Journal of Computer Applications in Technology
            International Journal of Computer Applications in Technology  Volume 73, Issue 3
            2023
            73 pages
            ISSN:0952-8091
            EISSN:1741-5047
            DOI:10.1504/ijcat.2023.73.issue-3
            Issue’s Table of Contents

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            Inderscience Publishers

            Geneva 15, Switzerland

            Publication History

            Published: 01 January 2023

            Author Tags

            1. deep learning
            2. sentiment analysis
            3. word embedding
            4. big data
            5. natural language processing

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