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64. David Krueger - Managing the incentives of AI

Towards Data Science

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In this paper, we show how to make a recommender system as myopic as possible. We then add an outer loop algorithm that is supposed to help figure out how the inner loop on the original learning algorithm can do a better job of learning. And so our experiments demonstrate that that that happens you add metal learning to this agent, and it flips doing the defect thing, the miopic thing, to investing in non miophically.

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