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Journal Article

Citation

Cohen MK, Hutter M, Osborne MA. AI Mag. 2022; ePub(ePub): ePub.

Copyright

(Copyright © 2022, American Association for Artificial Intelligence)

DOI

10.1002/aaai.12064

PMID

unavailable

Abstract

We analyze the expected behavior of an advanced artificial agent with a learned goal planning in an unknown environment. Given a few assumptions, we argue that it will encounter a fundamental ambiguity in the data about its goal. For example, if we provide a large reward to indicate that something about the world is satisfactory to us, it may hypothesize that what satisfied us was the sending of the reward itself; no observation can refute that. Then we argue that this ambiguity will lead it to intervene in whatever protocol we set up to provide data for the agent about its goal. We discuss an analogous failure mode of approximate solutions to assistance games. Finally, we briefly review some recent approaches that may avoid this problem.


Language: en

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