Cross-media Structured Common Space for Multimedia Event Extraction
Manling Li, Alireza Zareian, Qi Zeng, Spencer Whitehead, Di Lu, Heng Ji, Shih-Fu Chang
Abstract
We introduce a new task, MultiMedia Event Extraction (M 2 E 2 ), which aims to extract events and their arguments from multimedia documents. We develop the first benchmark and collect a dataset of 245 multimedia news articles with extensively annotated events and arguments. 1 We propose a novel method, Weakly Aligned Structured Embedding (WASE), that encodes structured representations of semantic information from textual and visual data into a common embedding space. The structures are aligned across modalities by employing a weakly supervised training strategy, which enables exploiting available resources without explicit cross-media annotation. Compared to unimodal state-of-the-art methods, our approach achieves 4.0% and 9.8% absolute F-score gains on text event argument role labeling and visual event extraction. Compared to stateof-the-art multimedia unstructured representations, we achieve 8.3% and 5.0% absolute Fscore gains on multimedia event extraction and argument role labeling, respectively. By utilizing images, we extract 21.4% more event mentions than traditional text-only methods.
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Cited by top-tier papers31
- CLIP-Event: Connecting Text and Images with Event StructuresManling Li, Ruochen Xu, Shuohang Wang, Luowei Zhou et al.CVPR 2022 · 103 citations
- Language Models Can Improve Event Prediction by Few-Shot Abductive ReasoningXiaoming Shi, Siqiao Xue, Kangrui Wang, Fan Zhou et al.NeurIPS 2023 · 95 citations
- Text2Mol: Cross-Modal Molecule Retrieval with Natural Language QueriesCarl Edwards, ChengXiang Zhai, Heng JiEMNLP 2021 · 79 citations
- MuMuQA: Multimedia Multi-Hop News Question Answering via Cross-Media Knowledge Extraction and GroundingRevanth Gangi Reddy, Xilin Rui, Manling Li, Xudong Lin et al.AAAI 2022 · 37 citations
- Timeline Summarization based on Event Graph Compression via Time-Aware Optimal TransportManling Li, Tengfei Ma, Mo Yu, Lingfei Wu et al.EMNLP 2021 · 25 citations
Builds on5
- VL-BERT: Pre-training of Generic Visual-Linguistic RepresentationsWeijie Su, Xizhou Zhu, Yue Cao, Bin Li et al.ICLR 2020 · 1,825 citations
- VideoBERT: A Joint Model for Video and Language Representation LearningChen Sun, Austin Myers, Carl Vondrick, Kevin Murphy et al.ICCV 2019 · 1,396 citations
- Unicoder-VL: A Universal Encoder for Vision and Language by Cross-Modal Pre-TrainingGen Li, Nan Duan, Yuejian Fang, Ming Gong et al.AAAI 2020 · 966 citations
- Deep Joint-Semantics Reconstructing Hashing for Large-Scale Unsupervised Cross-Modal RetrievalShupeng Su, Zhisheng Zhong, Chao ZhangICCV 2019 · 261 citations
- Adversarial Representation Learning for Text-to-Image MatchingNikolaos Sarafianos, Xiang Xu, Ioannis A. KakadiarisICCV 2019 · 228 citations
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