Multimedia Event Extraction From News With a Unified Contrastive Learning Framework
Jian Liu, Yufeng Chen, Jinan Xu
Abstract
Extracting events from news have seen many benefits in downstream applications. Today's event extraction (EE) systems, however, usually focus on a single modality --- either for text or image, and such methods suffer from incomplete information because a news document is typically presented in a multimedia format. In this paper, we propose a new method for multimedia EE by bridging the textual and visual modalities with a unified contrastive learning framework. Our central idea is to create a shared space for texts and images in order to improve their similar representation. This is accomplished by training on text-image pairs in general, and we demonstrate that it is possible to use this framework to boost learning for one modality by investigating the complementary of the other modality. On the benchmark dataset, our approach establishes a new state-of-the-art performance and shows a 3 percent improvement in F1. Furthermore, we demonstrate that it can achieve cutting-edge performance for visual EE even in a zero-shot scenario with no annotated data in the visual modality.
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Cited by top-tier papers7
- Cross-modal Multi-task Learning for Multimedia Event ExtractionJianwei Cao, Yanli Hu, Zhen Tan, Xiang ZhaoAAAI 2025 · 8 citations
- Training Multimedia Event Extraction With Generated Images and CaptionsZilin Du, Yunxin Li, Xu Guo, Yidan Sun et al.ACM MM 2023 · 7 citations
- Learning with Partial Annotations for Event DetectionJian Liu, Dianbo Sui, Kang Liu, Haoyan Liu et al.ACL 2023 · 4 citations
- Three Stream Based Multi-level Event Contrastive Learning for Text-Video Event ExtractionJiaqi Li, Chuanyi Zhang, Miaozeng Du, Dehai Min et al.EMNLP 2023 · 1 citation
- UMIE: Unified Multimodal Information Extraction with Instruction TuningLin Sun, Kai Zhang, Qingyuan Li, Renze LouAAAI 2024
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