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Collaborative filtering with localised ranking

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Résumé

In recommendation systems, one is interested in the ranking of the predicted items as opposed to other losses such as the mean squared error. Although a variety of ways to evaluate rankings exist in the literature, here we focus on the Area Under the ROC Curve (AUC) as it widely used and has a strong theoretical underpinning. In practical recommendation, only items at the top of the ranked list are presented to the users. With this in mind we propose a class of objective functions which primarily represent a smooth surrogate for the real AUC, and in a special case we show how to prioritise the top of the list. This loss is differentiable and is optimised through a carefully designed stochastic gradient-descent-based algorithm which scales linearly with the size of the data. We mitigate sample bias present in the data by sampling observations according to a certain power-law based distribution. In addition, we provide computation results as to the efficacy of the proposed method using synthetic and real data.

langue originaleAnglais
titreProceedings of the 29th AAAI Conference on Artificial Intelligence, AAAI 2015 and the 27th Innovative Applications of Artificial Intelligence Conference, IAAI 2015
EditeurAI Access Foundation
Pages2554-2560
Nombre de pages7
ISBN (Electronique)9781577357025
étatPublié - 1 juin 2015
Modification externeOui
Evénement29th AAAI Conference on Artificial Intelligence, AAAI 2015 and the 27th Innovative Applications of Artificial Intelligence Conference, IAAI 2015 - Austin, États-Unis
Durée: 25 janv. 201530 janv. 2015

Série de publications

NomProceedings of the National Conference on Artificial Intelligence
Volume4

Une conférence

Une conférence29th AAAI Conference on Artificial Intelligence, AAAI 2015 and the 27th Innovative Applications of Artificial Intelligence Conference, IAAI 2015
Pays/TerritoireÉtats-Unis
La villeAustin
période25/01/1530/01/15

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