Paper
30 April 2024 Deep learning-based recurrent neural network for underwater image enhancement
Author Affiliations +
Proceedings Volume 13156, Sixth Conference on Frontiers in Optical Imaging and Technology: Imaging Detection and Target Recognition; 1315617 (2024) https://doi.org/10.1117/12.3018273
Event: Sixth Conference on Frontiers in Optical Imaging Technology and Applications (FOI2023), 2023, Nanjing, JS, China
Abstract
Factors such as scattering and absorption of light by suspended particles and lack of light in deep water exist in complex underwater environments, leading to visual degradation effects such as loss of underwater image features, colour deviation and contrast reduction. With the development of artificial intelligence, deep neural networks are widely used in the field of computer vision and show their powerful brain-like separation (local information processing) and integration (global information processing) processing capabilities. In this paper, we use the visual saliency model to construct a Gaussian pyramid of luminance, orientation, edge and colour applicable to underwater degraded images to obtain shallow image features of underwater images. Combined with the VGG16 convolutional neural network model to construct a progressive enhancement neural network based on deep learning, which in turn improves the high-dimensional saliency features of underwater degraded images. The experimental results show that the enhanced underwater image features of this algorithm have better detail retention and the colour is more in line with the human eye vision, and the experimental results of the objective indexes are better than the comparison algorithm.
(2024) Published by SPIE. Downloading of the abstract is permitted for personal use only.
Xinyu Yao, Fengtao He, and Binghui Wang "Deep learning-based recurrent neural network for underwater image enhancement", Proc. SPIE 13156, Sixth Conference on Frontiers in Optical Imaging and Technology: Imaging Detection and Target Recognition, 1315617 (30 April 2024); https://doi.org/10.1117/12.3018273
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KEYWORDS
Image enhancement

Image processing

Image quality

Visualization

Feature extraction

Visual process modeling

Image fusion

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