An Nguyen Tran Khuong
Also published as: An Nguyen Tran Khuong
2025
NTA at SemEval-2025 Task 11: Enhanced Multilingual Textual Multi-label Emotion Detection via Integrated Augmentation Learning
Nguyen Pham Hoang Le
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An Nguyen Tran Khuong
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Tram Nguyen Thi Ngoc
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Thin Dang Van
Proceedings of the 19th International Workshop on Semantic Evaluation (SemEval-2025)
Emotion detection in text is crucial for various applications, but progress, especially in multi-label scenarios, is often hampered by data scarcity, particularly for low-resource languages like Emakhuwa and Tigrinya. This lack of data limits model performance and generalizability. To address this, the NTA team developed a system for SemEval-2025 Task 11, leveraging data augmentation techniques: swap, deletion, oversampling, emotion-focused synonym insertion and synonym replacement to enhance baseline models for multilingual textual multi-label emotion detection. Our proposed system achieved significantly higher macro F1-scores compared to the baseline across multiple languages, demonstrating a robust approach to tackling data scarcity. This resulted in a 17th place overall ranking on the private leaderboard, and remarkably, we achieved the highest score and became the winner in Tigrinya language, demonstrating the effectiveness of our approach in a low-resource setting.
Reading the Signs: A Graph-Based System for Multimodal Information Retrieval on Vietnamese Traffic Law
Hieu Minh Huynh
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An Nguyen Tran Khuong
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Dai Phan Trong
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Tin Van Huynh
Proceedings of the 11th International Workshop on Vietnamese Language and Speech Processing
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- Hieu Minh Huynh 1
- Tin Van Huynh 1
- Tram Nguyen Thi Ngoc 1
- Nguyen Pham Hoang Le 1
- Dai Phan Trong 1
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