Columbia at SemEval-2019 Task 7: Multi-task Learning for Stance Classification and Rumour Verification
The paper presents Columbia team{'}s participation in the SemEval 2019 Shared Task 7: RumourEval 2019. Detecting rumour on social networks has been a focus of research in recent years. Previous work suffered from data sparsity, which potentially limited the application of more sophisticated neural architecture to this task. We mitigate this problem by proposing a multi-task learning approach together with language model fine-tuning. Our attention-based model allows different tasks to leverage different level of information. Our system ranked 6th overall with an F1-score of 36.25 on stance classification and F1 of 22.44 on rumour verification.
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General ClassificationLanguage ModelingLanguage ModellingMulti-Task LearningStance ClassificationSimilar Papers 제목 키워드 기반
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