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Deep Learning Based Text Classification: A Comprehensive Review

6 April 2020
Shervin Minaee
Nal Kalchbrenner
Min Zhang
Narjes Nikzad
M. Asgari-Chenaghlu
Jianfeng Gao
    AILaw
    VLM
    AI4TS
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Abstract

Deep learning based models have surpassed classical machine learning based approaches in various text classification tasks, including sentiment analysis, news categorization, question answering, and natural language inference. In this paper, we provide a comprehensive review of more than 150 deep learning based models for text classification developed in recent years, and discuss their technical contributions, similarities, and strengths. We also provide a summary of more than 40 popular datasets widely used for text classification. Finally, we provide a quantitative analysis of the performance of different deep learning models on popular benchmarks, and discuss future research directions.

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