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A System for Tracking the Dynamics of Social Preference Behavior in Small Rodents
Published on: November 21, 2019
Deep mechanism design: Learning social and economic policies for human benefit
Andrea Tacchetti1, Raphael Koster1, Jan Balaguer1
1Google DeepMind, London EC4A 3TW.
Abstract:
Human society is coordinated by mechanisms that control how prices are agreed, taxes are set, and electoral votes are tallied. The design of robust and effective mechanisms for human benefit is a core problem in the social, economic, and political sciences. Here, we discuss the recent application of modern tools from AI research, including deep neural networks trained with reinforcement learning (RL), to create more desirable mechanisms for people. We review the application of machine learning to design effective auctions, learn optimal tax policies, and discover redistribution policies that win the popular vote among human users. We discuss the challenge of accurately modeling human preferences and the problem of aligning a mechanism to the wishes of a potentially diverse group. We highlight the importance of ensuring that research into "deep mechanism design" is conducted safely and ethically.
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