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Timothy Arthur Mann

1 accepted papers

2019

Learning from Delayed Outcomes via Proxies with Applications to Recommender Systems

ICML 2019oral

Predicting delayed outcomes is an important problem in recommender systems (e.g., if customers will finish reading an ebook). We formalize the problem as an adversarial, delayed online learning problem and consider how a proxy for the delayed outcome (e.g., if customers read a third of the book in 2…

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