Enhancement and Optimization of Underwater Images and Videos Mapping.

Sensors (Basel)

State Key Laboratory of Management and Control for Complex Systems, Institute of Automation, Chinese Academy of Sciences, Beijing 100190, China.

Published: June 2023

AI Article Synopsis

  • Underwater images often suffer from poor visibility, reduced contrast, and color distortions due to light absorption and scattering in water, making enhancement challenging.
  • This paper introduces a high-speed method for enhancing underwater images and videos using dark channel prior, which includes improved background light estimation and a refined transmission map for better color and visibility correction.
  • The effectiveness of this method is validated through various image-quality assessments and real-time testing on an underwater vehicle, demonstrating significant improvements over existing techniques.

Article Abstract

Underwater images tend to suffer from critical quality degradation, such as poor visibility, contrast reduction, and color deviation by virtue of the light absorption and scattering in water media. It is a challenging problem for these images to enhance visibility, improve contrast, and eliminate color cast. This paper proposes an effective and high-speed enhancement and restoration method based on the dark channel prior (DCP) for underwater images and video. Firstly, an improved background light (BL) estimation method is proposed to estimate BL accurately. Secondly, the R channel's transmission map (TM) based on the DCP is estimated sketchily, and a TM optimizer integrating the scene depth map and the adaptive saturation map (ASM) is designed to refine the afore-mentioned coarse TM. Later, the TMs of G-B channels are computed by their ratio to the attenuation coefficient of the red channel. Finally, an improved color correction algorithm is adopted to improve visibility and brightness. Several typical image-quality assessment indexes are employed to testify that the proposed method can restore underwater low-quality images more effectively than other advanced methods. An underwater video real-time measurement is also conducted on the flipper-propelled underwater vehicle-manipulator system to verify the effectiveness of the proposed method in the real scene.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10305551PMC
http://dx.doi.org/10.3390/s23125708DOI Listing

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