Intelligent Robotic Visual Perception with Deep Learning provides an in-depth exploration of deep learning-based robot Intelligent vision perception technology, establishing a solid foundation for engineering professionals to learn about the applications and latest theoretical methods in visual perception. The book, in a comprehensive manner, covers the research aspects of deep learning technology in intelligent visual perception, ranging from methods to practical applications, algorithm analysis to model construction. It integrates the latest international research trends, providing an essential reference for researchers working in the area.…mehr
Intelligent Robotic Visual Perception with Deep Learning provides an in-depth exploration of deep learning-based robot Intelligent vision perception technology, establishing a solid foundation for engineering professionals to learn about the applications and latest theoretical methods in visual perception. The book, in a comprehensive manner, covers the research aspects of deep learning technology in intelligent visual perception, ranging from methods to practical applications, algorithm analysis to model construction. It integrates the latest international research trends, providing an essential reference for researchers working in the area.Hinweis: Dieser Artikel kann nur an eine deutsche Lieferadresse ausgeliefert werden.
Dr. Qiakang Liang is a Professor at the College of Electrical and Information Engineering, Hunan University, China. He also serves as the Deputy Director of the National Engineering Research Center for Robot Vision Perception and Control. His research interests include robotics and mechatronics, biomimetic sensing, advanced robot technology, and human-computer interaction
Inhaltsangabe
1. An overview of the development and challenges of robot vision perception systems 2. The components, main implementation steps, and typical applications of robot vision perception systems 3. D deep learning technologies in robot vision perception systems 4. Text detection based on image segmentation and sequence-based scene text recognition technologies in natural scenes 5. Visual object detection technologies, with a focus on R-FCN-based and Mask RCNN-based object detection methods 6. Multi-object tracking technologies, emphasizing sequence feature-based and context graph model-based multi-object tracking methods 7. Image segmentation methods, with a focus on remote sensing image semantic segmentation using adaptive feature selection networks and region segmentation based on SU-SWA
1. An overview of the development and challenges of robot vision perception systems 2. The components, main implementation steps, and typical applications of robot vision perception systems 3. D deep learning technologies in robot vision perception systems 4. Text detection based on image segmentation and sequence-based scene text recognition technologies in natural scenes 5. Visual object detection technologies, with a focus on R-FCN-based and Mask RCNN-based object detection methods 6. Multi-object tracking technologies, emphasizing sequence feature-based and context graph model-based multi-object tracking methods 7. Image segmentation methods, with a focus on remote sensing image semantic segmentation using adaptive feature selection networks and region segmentation based on SU-SWA
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