Aspect Level Sentiment Analysis Using Bi-Directional LSTM Encoder with the Attention Mechanism

Author:

Kay Khine Win Lei,Thwet Aung Nyein Thwet

Publisher

Springer International Publishing

Reference13 articles.

1. Tang, D., Qin, B., Feng, X., Liu, T.: Effective LSTMs for target-dependent sentiment classification. In: Proceedings of COLING 2016, the 26th International Conference on Computational Linguistics, 11–17 December 2016, Osaka, Japan, pp. 3298–3307 (2016)

2. Wang, Y., Huang, M., Zhao, L., Zhu, X.: Attention-based LSTM for aspect-level sentiment classification. In: Proceedings of the 2016 Conference on Empirical Methods in Natural Language Processing, 1–5 November 2016, Austin, Texas, pp. 606–615 (2016)

3. Pontiki, M., et al.: SemEval-2016 task 5: aspect based sentiment analysis. In: Proceedings of SemEval-2016, 2016 Association for Computational Linguistics, 16–17 June 2016, San Diego, California, pp. 19–30 (2016)

4. Burn, C., Nikoulina, V.: Aspect based sentiment analysis into the wild. In: Proceedings of the 9th Workshop on Computational Approaches to Subjectivity, Sentiment and Social Media Analysis, Brussels, 2018 Association for Computational Linguistics, Belgium, pp. 116–122, 31 October 2018

5. He, R., Lee, W.S., Ng, H.T., Dahlmeier, D.: Effective attention modeling for aspect-level sentiment classification. In: Proceedings of the 27th International Conference on Computational Linguistics, 20–26 August 2018, Santa Fe, New Mexico, USA, pp. 1121–1131 (2018)

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