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Generation and Processing of Simulated Underwater Images for Infrastructure Visual Inspection with UUVs

Olaya Álvarez-Tuñón, Alberto Jardón, Carlos Balaguer

发表年份
2019
引用次数
30
访问权限
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摘要

The development of computer vision algorithms for navigation or object detection is one of the key issues of underwater robotics. However, extracting features from underwater images is challenging due to the presence of lighting defects, which need to be counteracted. This requires good environmental knowledge, either as a dataset or as a physic model. The lack of available data, and the high variability of the conditions, makes difficult the development of robust enhancement algorithms. A framework for the development of underwater computer vision algorithms is presented, consisting of a method for underwater imaging simulation, and an image enhancement algorithm, both integrated in the open-source robotics simulator UUV Simulator. The imaging simulation is based on a novel combination of the scattering model and style transfer techniques. The use of style transfer allows a realistic simulation of different environments without any prior knowledge of them. Moreover, an enhancement algorithm that successfully performs a correction of the imaging defects in any given scenario for either the real or synthetic images has been developed. The proposed approach showcases then a novel framework for the development of underwater computer vision algorithms for SLAM, navigation, or object detection in UUVs.

关键词

UnderwaterArtificial intelligenceComputer scienceRoboticsComputer visionKey (lock)Object (grammar)Unmanned underwater vehicleObject detectionMachine vision

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