Visual Pivoting for (Unsupervised) Entity Alignment
Fangyu Liu, Muhao Chen, Dan Roth, Nigel Collier
摘要
This work studies the use of visual semantic representations to align entities in heterogeneous knowledge graphs (KGs). Images are natural components of many existing KGs. By combining visual knowledge with other auxiliary information, we show that the proposed new approach, EVA, creates a holistic entity representation that provides strong signals for cross-graph entity alignment. Besides, previous entity alignment methods require human labelled seed alignment, restricting availability. EVA provides a completely unsupervised solution by leveraging the visual similarity of entities to create an initial seed dictionary (visual pivots). Experiments on benchmark data sets DBP15k and DWY15k show that EVA offers state-of-the-art performance on both monolingual and cross-lingual entity alignment tasks. Furthermore, we discover that images are particularly useful to align long-tail KG entities, which inherently lack the structural contexts necessary for capturing the correspondences. Code release: https://github.com/cambridgeltl/eva; project page: http://cogcomp.org/page/publication view/927.
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引用它的顶会 Paper26
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它引用的顶会 Paper5
- Knowledge Graph Alignment Network with Gated Multi-Hop Neighborhood AggregationZequn Sun, Chengming Wang, Wei Hu, Muhao Chen 等AAAI 2020 · 被引用 379 次
- COTSAE: CO-Training of Structure and Attribute Embeddings for Entity AlignmentKai Yang, Shaoqin Liu, Junfeng Zhao, Yasha Wang 等AAAI 2020 · 被引用 63 次
- Open Knowledge Enrichment for Long-tail EntitiesErmei Cao, Difeng Wang, Jiacheng Huang, Wei HuWWW 2020 · 被引用 51 次
- HAL: Improved Text-Image Matching by Mitigating Visual Semantic HubsFangyu Liu, Rongtian Ye, Xun Wang, Shuaipeng LiAAAI 2020 · 被引用 36 次
- Visual Grounding in Video for Unsupervised Word TranslationGunnar A. Sigurdsson, Jean-Baptiste Alayrac, Aida Nematzadeh, Lucas Smaira 等CVPR 2020
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