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ViSoBERT: A Pre-Trained Language Model for Vietnamese Social Media Text Processing

About

English and Chinese, known as resource-rich languages, have witnessed the strong development of transformer-based language models for natural language processing tasks. Although Vietnam has approximately 100M people speaking Vietnamese, several pre-trained models, e.g., PhoBERT, ViBERT, and vELECTRA, performed well on general Vietnamese NLP tasks, including POS tagging and named entity recognition. These pre-trained language models are still limited to Vietnamese social media tasks. In this paper, we present the first monolingual pre-trained language model for Vietnamese social media texts, ViSoBERT, which is pre-trained on a large-scale corpus of high-quality and diverse Vietnamese social media texts using XLM-R architecture. Moreover, we explored our pre-trained model on five important natural language downstream tasks on Vietnamese social media texts: emotion recognition, hate speech detection, sentiment analysis, spam reviews detection, and hate speech spans detection. Our experiments demonstrate that ViSoBERT, with far fewer parameters, surpasses the previous state-of-the-art models on multiple Vietnamese social media tasks. Our ViSoBERT model is available only for research purposes.

Quoc-Nam Nguyen, Thang Chau Phan, Duc-Vu Nguyen, Kiet Van Nguyen• 2023

Related benchmarks

TaskDatasetResultRank
Named Entity RecognitionPhoNER_COVID19 (test)
Micro-F192.9
11
Topic ClassificationUIT-VSFC (test)
Accuracy88.8
9
Sentiment ClassificationUIT-VSFC (test)
Accuracy93.15
9
Spam Review DetectionViSpamReviews (test)
Accuracy90.99
5
Aspect-based Sentiment AnalysisUIT-ViSFD (test)
F1 (Detection)88.63
5
Aspect-based Sentiment AnalysisUIT-ABSA Hotel (test)
F1 (Detection)79.41
5
Aspect-based Sentiment AnalysisUIT-ABSA Restaurant (test)
F1 (Detection)86.86
5
Natural Language InferenceViNLI 4-label (test)
Accuracy67.7
5
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