Tascon-Morales, Sergio; Márquez-Neila, Pablo; Sznitman, Raphael (2023). Logical Implications for Visual Question Answering Consistency. In: IEEE / CVF Computer Vision and Pattern Recognition Conference (CVPR). Vancouver. Jun 18-22, 2023.
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2303.09427.pdf - Submitted Version Available under License Creative Commons: Attribution (CC-BY). Download (1MB) | Preview |
Despite considerable recent progress in Visual Question Answering (VQA) models, inconsistent or contradictory answers continue to cast doubt on their true reasoning capabilities. However, most proposed methods use indirect strategies or strong assumptions on pairs of questions and answers to enforce model consistency. Instead, we propose a novel strategy intended to improve model performance by directly reducing logical inconsistencies. To do this, we introduce a new consistency loss term that can be used by a wide range of the VQA models and which relies on knowing the logical relation between pairs of questions and answers. While such information is typically not available in VQA datasets, we propose to infer these logical relations using a dedicated language model and use these in our proposed consistency loss function. We conduct extensive experiments on the VQA Introspect and DME datasets and show that our method brings improvements to state-of-the-art VQA models while being robust across different architectures and settings.
Item Type: |
Conference or Workshop Item (Paper) |
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Division/Institute: |
10 Strategic Research Centers > ARTORG Center for Biomedical Engineering Research 10 Strategic Research Centers > ARTORG Center for Biomedical Engineering Research > ARTORG Center - AI in Medical Imaging Laboratory |
Graduate School: |
Graduate School for Cellular and Biomedical Sciences (GCB) |
UniBE Contributor: |
Tascon Morales, Sergio, Márquez Neila, Pablo, Sznitman, Raphael |
Subjects: |
500 Science > 570 Life sciences; biology 600 Technology > 610 Medicine & health 000 Computer science, knowledge & systems 100 Philosophy > 160 Logic |
Funders: |
[4] Swiss National Science Foundation |
Language: |
English |
Submitter: |
Sergio Tascon Morales |
Date Deposited: |
24 May 2023 11:44 |
Last Modified: |
07 Jul 2023 09:54 |
Related URLs: |
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ArXiv ID: |
2303.09427 |
BORIS DOI: |
10.48350/182869 |
URI: |
https://boris.unibe.ch/id/eprint/182869 |