Visual Perception and Control of Underwater Robots

Visual Perception and Control of Underwater Robots

EnglishPaperback / softbackPrint on demand
Yu, Junzhi
Taylor & Francis Ltd
EAN: 9780367700300
Print on demand
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Detailed information

Visual Perception and Control of Underwater Robots covers theories and applications from aquatic visual perception and underwater robotics. Within the framework of visual perception for underwater operations, image restoration, binocular measurement, and object detection are addressed. More specifically, the book includes adversarial critic learning for visual restoration, NSGA-II-based calibration for binocular measurement, prior knowledge refinement for object detection, analysis of temporal detection performance, as well as the effect of the aquatic data domain on object detection.

With the aid of visual perception technologies, two up-to-date underwater robot systems are demonstrated. The first system focuses on underwater robotic operation for the task of object collection in the sea. The second is an untethered biomimetic robotic fish with a camera stabilizer, its control methods based on visual tracking.

The authors provide a self-contained and comprehensive guide to understand underwater visual perception and control. Bridging the gap between theory and practice in underwater vision, the book features implementable algorithms, numerical examples, and tests, where codes are publicly available. Additionally, the mainstream technologies covered in the book include deep learning, adversarial learning, evolutionary computation, robust control, and underwater bionics. Researchers, senior undergraduate and graduate students, and engineers dealing with underwater visual perception and control will benefit from this work.

EAN 9780367700300
ISBN 0367700301
Binding Paperback / softback
Publisher Taylor & Francis Ltd
Publication date September 26, 2022
Pages 236
Language English
Dimensions 229 x 152
Country United Kingdom
Readership Professional & Scholarly
Authors Chen, Xingyu; Kong, Shihan; Yu, Junzhi
Illustrations 21 Tables, black and white; 56 Line drawings, black and white; 49 Halftones, black and white; 105 Illustrations, black and white