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Rupert Freeman

6 accepted papers

2020

No-Regret and Incentive-Compatible Online Learning

ICML 2020poster

We study online learning settings in which experts act strategically to maximize their influence on the learning algorithm’s predictions by potentially misreporting their beliefs about a sequence of binary events. Our goal is twofold. First, we want the learning algorithm to be no-regret with respec…

2020

Proportionality in Approval-Based Elections With a Variable Number of Winners

IJCAI 2020poster

We study proportionality in approval-based multiwinner elections with a variable number of winners, where both the size and identity of the winning committee are informed by voters' opinions. While proportionality has been studied in multiwinner elections with a fixed number of winners, it has not b…

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