Shared Control with Black Box Agents using Oracle Queries
October 25, 2024 Β· Declared Dead Β· π International Conference on Auditory Display
"No code URL or promise found in abstract"
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Authors
Inbal Avraham, Reuth Mirsky
arXiv ID
2410.19612
Category
cs.AI: Artificial Intelligence
Cross-listed
cs.RO
Citations
1
Venue
International Conference on Auditory Display
Last Checked
4 months ago
Abstract
Shared control problems involve a robot learning to collaborate with a human. When learning a shared control policy, short communication between the agents can often significantly reduce running times and improve the system's accuracy. We extend the shared control problem to include the ability to directly query a cooperating agent. We consider two types of potential responses to a query, namely oracles: one that can provide the learner with the best action they should take, even when that action might be myopically wrong, and one with a bounded knowledge limited to its part of the system. Given this additional information channel, this work further presents three heuristics for choosing when to query: reinforcement learning-based, utility-based, and entropy-based. These heuristics aim to reduce a system's overall learning cost. Empirical results on two environments show the benefits of querying to learn a better control policy and the tradeoffs between the proposed heuristics.
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