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arxiv: 1605.03838 · v2 · pith:JWNLWT5Unew · submitted 2016-05-12 · 💻 cs.GT

An Experimental Evaluation of Regret-Based Econometrics

classification 💻 cs.GT
keywords regret-basedassumptionseconometricsfoundhighobtainedregrettypes
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Using data obtained in a controlled ad-auction experiment that we ran, we evaluate the regret-based approach to econometrics that was recently suggested by Nekipelov, Syrgkanis, and Tardos (EC 2015). We found that despite the weak regret-based assumptions, the results were (at least) as accurate as those obtained using classic equilibrium-based assumptions. En route we studied to what extent humans actually minimize regret in our ad auction, and found a significant difference between the "high types" (players with a high valuation) who indeed rationally minimized regret and the "low types" who significantly overbid. We suggest that correcting for these biases and adjusting the regret-based econometric method may improve the accuracy of estimated values.

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