Learning to Compose Skills
November 30, 2017 Β· Declared Dead Β· π arXiv.org
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Authors
Himanshu Sahni, Saurabh Kumar, Farhan Tejani, Charles Isbell
arXiv ID
1711.11289
Category
cs.AI: Artificial Intelligence
Citations
43
Venue
arXiv.org
Last Checked
4 months ago
Abstract
We present a differentiable framework capable of learning a wide variety of compositions of simple policies that we call skills. By recursively composing skills with themselves, we can create hierarchies that display complex behavior. Skill networks are trained to generate skill-state embeddings that are provided as inputs to a trainable composition function, which in turn outputs a policy for the overall task. Our experiments on an environment consisting of multiple collect and evade tasks show that this architecture is able to quickly build complex skills from simpler ones. Furthermore, the learned composition function displays some transfer to unseen combinations of skills, allowing for zero-shot generalizations.
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