The Art of Prompting: Event Detection based on Type Specific Prompts

Published: 01 Jan 2023, Last Modified: 25 Jun 2024ACL (2) 2023EveryoneRevisionsBibTeXCC BY-SA 4.0
Abstract: We compare various forms of prompts to represent event types and develop a unified framework to incorporate the event type specific prompts for supervised, few-shot, and zero-shot event detection. The experimental results demonstrate that a well-defined and comprehensive event type prompt can significantly improve event detection performance, especially when the annotated data is scarce (few-shot event detection) or not available (zero-shot event detection). By leveraging the semantics of event types, our unified framework shows up to 22.2% F-score gain over the previous state-of-the-art baselines.
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