arXiv Open Access 2025

CareLab at #SMM4H-HeaRD 2025: Insomnia Detection and Food Safety Event Extraction with Domain-Aware Transformers

Zihan Liang Ziwen Pan Sumon Kanti Dey Azra Ismail
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Abstrak

This paper presents our system for the SMM4H-HeaRD 2025 shared tasks, specifically Task 4 (Subtasks 1, 2a, and 2b) and Task 5 (Subtasks 1 and 2). Task 4 focused on detecting mentions of insomnia in clinical notes, while Task 5 addressed the extraction of food safety events from news articles. We participated in all subtasks and report key findings across them, with particular emphasis on Task 5 Subtask 1, where our system achieved strong performance-securing first place with an F1 score of 0.958 on the test set. To attain this result, we employed encoder-based models (e.g., RoBERTa), alongside GPT-4 for data augmentation. This paper outlines our approach, including preprocessing, model architecture, and subtask-specific adaptations

Topik & Kata Kunci

Penulis (4)

Z

Zihan Liang

Z

Ziwen Pan

S

Sumon Kanti Dey

A

Azra Ismail

Format Sitasi

Liang, Z., Pan, Z., Dey, S.K., Ismail, A. (2025). CareLab at #SMM4H-HeaRD 2025: Insomnia Detection and Food Safety Event Extraction with Domain-Aware Transformers. https://arxiv.org/abs/2506.18185

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Tahun Terbit
2025
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en
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arXiv
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