Multi-label Classification of Mobile Application User Reviews Using Neural Language Models

Author:

Khlifi Ghaith,Jenhani IlyesORCID,Messaoud Montassar BenORCID,Mkaouer Mohamed WiemORCID

Publisher

Springer Nature Switzerland

Reference12 articles.

1. Ben Messaoud, M., Jenhani, I., Ben Jemaa, N., Mkaouer, M.W.: A multi-label active learning approach for mobile app user review classification. In: Knowledge Science, Engineering and Management - 12th International Conference, KSEM, Athens, Greece, pp. 805–816, 28–30 August 2019

2. Brown, T.B., et al.: Language models are few-shot learners. CoRR abs/2005.14165 (2020)

3. Devlin, J., Chang, M., Lee, K., Toutanova, K.: BERT: pre-training of deep bidirectional transformers for language understanding. In: Proceedings of the 2019 Conference of the North American Chapter of the Association for Computational Linguistics: Human Language Technologies, NAACL-HLT 2019, Minneapolis, MN, USA, pp. 4171–4186, 2–7 June 2019

4. Guzman, E., El-Haliby, M., Bruegge, B.: Ensemble methods for app review classification: an approach for software evolution(n). In: 30th IEEE/ACM International Conference on Automated Software Engineering, ASE, Lincoln, NE, USA, pp. 771–776 (2015)

5. Hadi, M.A., Fard, F.H.: Evaluating pre-trained models for user feedback analysis in software engineering: a study on classification of app-reviews. CoRR abs/2104.05861 (2021)

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