A survey on knowledge-enhanced multimodal learning
November 19, 2022 ยท The Cartographer ยท ๐ Artificial Intelligence Review
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"Title-pattern auto-detect: A survey on knowledge-enhanced multimodal learning"
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Authors
Maria Lymperaiou, Giorgos Stamou
arXiv ID
2211.12328
Category
cs.LG: Machine Learning
Cross-listed
cs.AI
Citations
24
Venue
Artificial Intelligence Review
Last Checked
2 days ago
Abstract
Multimodal learning has been a field of increasing interest, aiming to combine various modalities in a single joint representation. Especially in the area of visiolinguistic (VL) learning multiple models and techniques have been developed, targeting a variety of tasks that involve images and text. VL models have reached unprecedented performances by extending the idea of Transformers, so that both modalities can learn from each other. Massive pre-training procedures enable VL models to acquire a certain level of real-world understanding, although many gaps can be identified: the limited comprehension of commonsense, factual, temporal and other everyday knowledge aspects questions the extendability of VL tasks. Knowledge graphs and other knowledge sources can fill those gaps by explicitly providing missing information, unlocking novel capabilities of VL models. In the same time, knowledge graphs enhance explainability, fairness and validity of decision making, issues of outermost importance for such complex implementations. The current survey aims to unify the fields of VL representation learning and knowledge graphs, and provides a taxonomy and analysis of knowledge-enhanced VL models.
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