Hypergraph Transformer: Weakly-Supervised Multi-hop Reasoning for Knowledge-based Visual Question Answering
Yu-Jung Heo, Eun-Sol Kim, Woo Suk Choi, Byoung-Tak Zhang
摘要
Knowledge-based visual question answering (QA) aims to answer a question which requires visually-grounded external knowledge beyond image content itself. Answering complex questions that require multi-hop reasoning under weak supervision is considered as a challenging problem since i) no supervision is given to the reasoning process and ii) highorder semantics of multi-hop knowledge facts need to be captured. In this paper, we introduce a concept of hypergraph to encode highlevel semantics of a question and a knowledge base, and to learn high-order associations between them. The proposed model, Hypergraph Transformer, constructs a question hypergraph and a query-aware knowledge hypergraph, and infers an answer by encoding inter-associations between two hypergraphs and intra-associations in both hypergraph itself. Extensive experiments on two knowledgebased visual QA and two knowledge-based textual QA demonstrate the effectiveness of our method, especially for multi-hop reasoning problem. Our source code is available at https://github.com/yujungheo/ kbvqa-public .
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引用它的顶会 Paper4
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它引用的顶会 Paper5
- Improving Multi-hop Question Answering over Knowledge Graphs using Knowledge Base EmbeddingsApoorv Saxena, Aditay Tripathi, Partha P. TalukdarACL 2020 · 被引用 488 次
- 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
- Language Generation with Multi-Hop Reasoning on Commonsense Knowledge GraphHaozhe Ji, Pei Ke, Shaohan Huang, Furu Wei 等EMNLP 2020 · 被引用 96 次
- RetinaFace: Single-Shot Multi-Level Face Localisation in the WildJiankang Deng, Jia Guo, Evangelos Ververas, Irene Kotsia 等CVPR 2020
- Hypergraph Attention Networks for Multimodal LearningEun-Sol Kim, Woo-Young Kang, Kyoung-Woon On, Yu-Jung Heo 等CVPR 2020
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