BaRC: Backward Reachability Curriculum for Robotic Reinforcement Learning
June 16, 2018 Β· Declared Dead Β· π IEEE International Conference on Robotics and Automation
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Authors
Boris Ivanovic, James Harrison, Apoorva Sharma, Mo Chen, Marco Pavone
arXiv ID
1806.06161
Category
cs.RO: Robotics
Cross-listed
cs.LG,
eess.SY
Citations
62
Venue
IEEE International Conference on Robotics and Automation
Last Checked
5 months ago
Abstract
Model-free Reinforcement Learning (RL) offers an attractive approach to learn control policies for high-dimensional systems, but its relatively poor sample complexity often forces training in simulated environments. Even in simulation, goal-directed tasks whose natural reward function is sparse remain intractable for state-of-the-art model-free algorithms for continuous control. The bottleneck in these tasks is the prohibitive amount of exploration required to obtain a learning signal from the initial state of the system. In this work, we leverage physical priors in the form of an approximate system dynamics model to design a curriculum scheme for a model-free policy optimization algorithm. Our Backward Reachability Curriculum (BaRC) begins policy training from states that require a small number of actions to accomplish the task, and expands the initial state distribution backwards in a dynamically-consistent manner once the policy optimization algorithm demonstrates sufficient performance. BaRC is general, in that it can accelerate training of any model-free RL algorithm on a broad class of goal-directed continuous control MDPs. Its curriculum strategy is physically intuitive, easy-to-tune, and allows incorporating physical priors to accelerate training without hindering the performance, flexibility, and applicability of the model-free RL algorithm. We evaluate our approach on two representative dynamic robotic learning problems and find substantial performance improvement relative to previous curriculum generation techniques and naive exploration strategies.
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