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Hyperbolic Deep Learning in Computer Vision: A Survey

delete2024-03-26
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OA
AI
P
Pascal Mettes *
M
Mina Ghadimi Atigh
M
Martin Keller‐Ressel
J
Jeffrey Gu
S
Serena Yeung
DOI:10.1007/s11263-024-02043-5delete
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摘要

摘要

En 中文
Deep representation learning is a ubiquitous part of modern computer vision. While Euclidean space has been the de facto standard manifold for learning visual representations, hyperbolic space has recently gained rapid traction for learning in computer vision. Specifically, hyperbolic learning has shown a strong potential to embed hierarchical structures, learn from limited samples, quantify uncertainty, add robustness, limit error severity, and more. In this paper, we provide a categorization and in-depth overview of current literature on hyperbolic learning for computer vision. We research both supervised and unsupervised literature and identify three main research themes in each direction. We outline how hyperbolic learning is performed in all themes and discuss the main research problems that benefit from current advances in hyperbolic learning for computer vision. Moreover, we provide a high-level intuition behind hyperbolic geometry and outline open research questions to further advance research in this direction.
Keyword:
Hyperbolic deep learning
Computer vision
Representation learning

期刊

International Journal of Computer Vision 封面图
International Journal of Computer Vision
IF:
9.3
论文数:
3.9K
被引数:
2.8W

机构

U
university of amsterdam
学者数:
6.0W
论文数: 5.1W
被引数: 94
S
Stanford University
学者数:
9.6W
论文数: 8.2W
被引数: 17.0W
T
Technische Universitat Dresden
学者数:
3.2W
论文数: 2.5W
被引数: 249
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