Cross-Media Keyphrase Prediction: A Unified Framework with Multi-Modality Multi-Head Attention and Image Wordings
Yue Wang, Jing Li, Michael R. Lyu, Irwin King
摘要
Social media produces large amounts of contents every day. To help users quickly capture what they need, keyphrase prediction is receiving a growing attention. Nevertheless, most prior efforts focus on text modeling, largely ignoring the rich features embedded in the matching images. In this work, we explore the joint effects of texts and images in predicting the keyphrases for a multimedia post. To better align social media style texts and images, we propose: (1) a novel Multi-Modality Multi-Head Attention (M 3 H-Att) to capture the intricate cross-media interactions; (2) image wordings, in forms of optical characters and image attributes, to bridge the two modalities. Moreover, we design a novel unified framework to leverage the outputs of keyphrase classification and generation and couple their advantages. Extensive experiments on a large-scale dataset 1 newly collected from Twitter show that our model significantly outperforms the previous state of the art based on traditional co-attentions. Further analyses show that our multi-head attention is able to attend information from various aspects and boost classification or generation in diverse scenarios.
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引用它的顶会 Paper4
- Towards Better Multi-modal Keyphrase Generation via Visual Entity Enhancement and Multi-granularity Image Noise FilteringYifan Dong, Suhang Wu, Fandong Meng, Jie Zhou 等ACM MM 2023 · 被引用 3 次
- Point-of-Interest Type Prediction using Text and ImagesDanae Sánchez Villegas, Nikolaos AletrasEMNLP 2021 · 被引用 2 次
- Boosting Multi-modal Keyphrase Prediction with Dynamic Chain-of-Thought in Vision-Language ModelsQihang Ma, Shengyu Li, Jie Tang, Dingkang Yang 等EMNLP 2025
- Augmenting Intra-Modal Understanding in MLLMs for Robust Multimodal Keyphrase GenerationJiajun Cao, Qinggang Zhang, Yunbo Tang, Zhishang Xiang 等AAAI 2026
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