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Quick Setup of Force-Controlled Industrial Gluing Tasks Using Learning From Demonstration
Iñigo Iturrate1, Aljaz Kramberger1, Christoffer Sloth1
1SDU Robotics, Maersk McKinney Moller Institute, University of Southern Denmark, Odense, Denmark.
Frontiers in Robotics and AI
|November 22, 2021
Summary
This study introduces a robot learning framework for in-contact tasks, like industrial gluing, using a single demonstration. The system adapts controllers to task geometry and human behavior, improving programming efficiency and execution quality.
Area of Science:
- Robotics
- Machine Learning
- Control Systems
Background:
- Programming robots for in-contact tasks, such as industrial gluing, is complex.
- Existing methods often require multiple demonstrations or lack adaptability.
Purpose of the Study:
- To present a novel framework for programming in-contact robot tasks using learning by demonstration.
- To develop a unified controller for seamless demonstration and execution phases.
- To adapt controller parameters to task geometry and human behavior for enhanced performance.
Main Methods:
- A unified controller structure supporting admittance control for demonstration and parallel force/position control for execution.
- Online estimation of task constraint geometry.
- Adaptive controller gains tuned to human demonstration behavior.
- A method for minimizing contact forces during motion mode switching.
Main Results:
- Successful demonstration of the framework on an industrial gluing task.
- Accurate online estimation of curved surface geometry.
- Adaptive controller achieved higher accuracy and shorter demonstration times compared to off-the-shelf controllers.
- Execution controller effectively reduced impact forces and maintained constant process force while adapting to surface geometry.
Conclusions:
- The proposed framework enables high-quality robot behavior programming for in-contact tasks with minimal demonstrations.
- The adaptive controller design enhances both the learning and execution phases of robot tasks.
- The system demonstrates robustness in handling transitions between free and in-contact motion.
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