Towards semi-episodic learning for robot damage recovery

October 05, 2016 Β· Declared Dead Β· πŸ› IEEE International Conference on Robotics and Automation

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Authors Konstantinos Chatzilygeroudis, Antoine Cully, Jean-Baptiste Mouret arXiv ID 1610.01407 Category cs.RO: Robotics Cross-listed cs.AI, cs.NE Citations 6 Venue IEEE International Conference on Robotics and Automation Last Checked 4 months ago
Abstract
The recently introduced Intelligent Trial and Error algorithm (IT\&E) enables robots to creatively adapt to damage in a matter of minutes by combining an off-line evolutionary algorithm and an on-line learning algorithm based on Bayesian Optimization. We extend the IT\&E algorithm to allow for robots to learn to compensate for damages while executing their task(s). This leads to a semi-episodic learning scheme that increases the robot's lifetime autonomy and adaptivity. Preliminary experiments on a toy simulation and a 6-legged robot locomotion task show promising results.
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