Online Prediction with Selfish Experts

Tim Roughgarden, Okke Schrijvers

Neural Information Processing Systems 

We consider the problem of binary prediction with expert advice in settings where experts have agency and seek to maximize their credibility. This paper makes three main contributions. First, it defines a model to reason formally about settings with selfish experts, and demonstrates that "incentive compatible" (IC) algorithms are closely related to the design of proper scoring rules.

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