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Deep Learning for Aspect-Level Sentiment Classification: Survey, Vision, and Challenges | IEEE Journals & Magazine | IEEE Xplore

Deep Learning for Aspect-Level Sentiment Classification: Survey, Vision, and Challenges


This survey aims to thoroughly review the literature on the advances of deep learning based ASC. First, we summarize the field of deep learning based ASC and organize exi...

Abstract:

This survey focuses on deep learning-based aspect-level sentiment classification (ASC), which aims to decide the sentiment polarity for an aspect mentioned within the doc...Show More

Abstract:

This survey focuses on deep learning-based aspect-level sentiment classification (ASC), which aims to decide the sentiment polarity for an aspect mentioned within the document. Along with the success of applying deep learning in many applications, deep learning-based ASC has attracted a lot of interest from both academia and industry in recent years. However, there still lack a systematic taxonomy of existing approaches and comparison of their performance, which are the gaps that our survey aims to fill. Furthermore, to quantitatively evaluate the performance of various approaches, the standardization of the evaluation methodology and shared datasets is necessary. In this paper, an in-depth overview of the current state-of-the-art deep learning-based methods is given, showing the tremendous progress that has already been made in ASC. In particular, first, a comprehensive review of recent research efforts on deep learning-based ASC is provided. More concretely, we design a taxonomy of deep learning-based ASC and provide a comprehensive summary of the state-of-the-art methods. Then, we collect all benchmark ASC datasets for researchers to study and conduct extensive experiments over five public standard datasets with various commonly used evaluation measures. Finally, we discuss some of the most challenging open problems and point out promising future research directions in this field.
This survey aims to thoroughly review the literature on the advances of deep learning based ASC. First, we summarize the field of deep learning based ASC and organize exi...
Published in: IEEE Access ( Volume: 7)
Page(s): 78454 - 78483
Date of Publication: 30 May 2019
Electronic ISSN: 2169-3536

Funding Agency:


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