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Online matrix completion through nuclear norm regularisation

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Résumé

It is the main goal of this paper to propose a novel method to perform matrix completion on-line. Motivated by a wide variety of applications, ranging from the design of recommender systems to sensor network localization through seismic data reconstruction, we consider the matrix completion problem when entries of the matrix of interest are observed gradually. Precisely, we place ourselves in the situation where the predictive rule should be refined incrementally, rather than recomputed from scratch each time the sample of observed entries increases. The extension of existing matrix completion methods to the sequential prediction context is indeed a major issue in the Big Data era, and yet little addressed in the literature. The algorithm promoted in this article builds upon the Soft Impute approach introduced in [1]. The major novelty essentially arises from the use of a randomised technique for both computing and updating the Singular Value Decomposition (SVD) involved in the algorithm. Though of disarming simplicity, the method proposed turns out to be very efficient, while requiring reduced computations. Several numerical experiments based on real datasets illustrating its performance are displayed, together with preliminary results giving it a theoretical basis.

langue originaleAnglais
titreSIAM International Conference on Data Mining 2014, SDM 2014
rédacteurs en chefMohammed Zaki, Zoran Obradovic, Pang Ning-Tan, Arindam Banerjee, Chandrika Kamath, Srinivasan Parthasarathy
EditeurSociety for Industrial and Applied Mathematics Publications
Pages623-631
Nombre de pages9
ISBN (Electronique)9781510811515
Les DOIs
étatPublié - 1 janv. 2014
Evénement14th SIAM International Conference on Data Mining, SDM 2014 - Philadelphia, États-Unis
Durée: 24 avr. 201426 avr. 2014

Série de publications

NomSIAM International Conference on Data Mining 2014, SDM 2014
Volume2

Une conférence

Une conférence14th SIAM International Conference on Data Mining, SDM 2014
Pays/TerritoireÉtats-Unis
La villePhiladelphia
période24/04/1426/04/14

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