2024
CVPR
CVPR 2024
Neural Underwater Scene Representation
Abstract
Among the numerous efforts towards digitally recovering the physical world Neural Radiance Fields (NeRFs) have proved effective in most cases. However underwater scene introduces unique challenges due to the absorbing water medium the local change in lighting and the dynamic contents in the scene. We aim at developing a neural underwater scene representation for these challenges modeling the complex process of attenuation unstable in-scattering and moving objects during light transport. The proposed method can reconstruct the scenes from both established datasets and in-the-wild videos with outstanding fidelity.
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Interdisciplinary Bridge
— Artificial Intelligence and Computer Vision and Deep Learning
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Keyword Pioneer
— underwater scene reconstruction
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Hot Topic Early Bird
— scene representation
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Cross-Pollinator
— Artificial Intelligence, Computer Science, Computer Vision, Data Science & Analytics, Deep Learning, Healthcare & Medicine, Interdisciplinary, Knowledge & Reasoning, Machine Learning, Mathematics & Optimization, Natural Language Processing, Reinforcement Learning, Robotics, Security & Privacy, Speech & Audio
Authors
Topics
Deep Learning > Architectures > Neural Networks
Deep Learning > Models > Generative Models
Computer Vision > Analysis > 3D Vision
Computer Vision > Processing > Video Processing
Artificial Intelligence > Core AI > Computer Vision
Computer Vision > Processing > Image Processing
Deep Learning > Models > Neural Networks
Computer Vision > Generation > 3D Generation