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Intelligent Perception System of Robot Visual Servo for Complex Industrial Environment
Yongchao Luo1, Shipeng Li2, Di Li2
1Guangzhou College of South China University of Technology School of Electrical Engineering, Guangzhou 510006, China.
Sensors (Basel, Switzerland)
|December 16, 2020
Summary
This study introduces a YOLO-v2-ROI algorithm for industrial robots, enhancing visual servo systems. It improves target recognition in complex environments, boosting efficiency and adaptability for robots.
Area of Science:
- Computer Vision
- Robotics
- Machine Learning
Background:
- Industrial robot control relies heavily on visual perception for complex environment navigation.
- Recognizing small or distant targets in cluttered industrial settings poses significant challenges for current systems.
- Accurate target recognition is a critical prerequisite for effective visual servoing.
Purpose of the Study:
- To develop an advanced image processing algorithm for robust target recognition in industrial environments.
- To enhance the capabilities of visual servo systems by improving automatic target identification and classification.
- To address limitations in detecting targets under complex visual backgrounds, varying lighting, and different perspectives.
Main Methods:
- Proposed a novel You Only Look Once Version 2 Region of Interest (YOLO-v2-ROI) neural network algorithm.
- Combined the rapid detection capabilities of YOLO with the Region of Interest (ROI) pooling structure for precise identification.
- Machine learning techniques were employed for training and validating the algorithm.
Main Results:
- The YOLO-v2-ROI algorithm demonstrated real-time image detection speeds.
- Achieved strong adaptability and recognition accuracy in complex backgrounds, including varied lighting and perspectives.
- Successfully identified and located visual targets, improving the overall environmental adaptability of visual servo systems.
Conclusions:
- The proposed YOLO-v2-ROI algorithm effectively overcomes challenges in industrial visual servo systems.
- The method enhances robot vision system efficiency by enabling automatic target recognition and reducing computational load.
- This approach significantly improves the environmental adaptability and performance of robots operating in complex industrial settings.
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