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Jaime G. Carbonell

2013

AUC

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Active Sampling For Rank Learning Via Optimizing The Area Under The Roc Curve, Pinar Donmez, Jaime G. Carbonell May 2013

Active Sampling For Rank Learning Via Optimizing The Area Under The Roc Curve, Pinar Donmez, Jaime G. Carbonell

Jaime G. Carbonell

Learning ranking functions is crucial for solving many problems, ranging from document retrieval to building recommendation systems based on an individual user’s preferences or on collaborative filtering. Learning-to-rank is particularly necessary for adaptive or personalizable tasks, including email prioritization, individualized recommendation systems, personalized news clipping services and so on. Whereas the learning-to-rank challenge has been addressed in the literature, little work has been done in an active-learning framework, where requisite user feedback is minimized by selecting only the most informative instances to train the rank learner. This paper addresses active rank-learning head on, proposing a new sampling strategy based on …