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Xavier Amatriain
Xavier Amatriain
VP of Engineering, AI Product Strategy. LinkedIn
Verified email at amatriain.net - Homepage
Title
Cited by
Cited by
Year
Multiverse recommendation: n-dimensional tensor factorization for context-aware collaborative filtering
A Karatzoglou, X Amatriain, L Baltrunas, N Oliver
Proceedings of the fourth ACM conference on Recommender systems, 79-86, 2010
10002010
Data mining methods for recommender systems
X Amatriain, JM Pujol
Recommender systems handbook, 39-71, 2011
403*2011
Temporal diversity in recommender systems
N Lathia, S Hailes, L Capra, X Amatriain
Proceedings of the 33rd international ACM SIGIR conference on Research and …, 2010
3852010
Watching television over an IP network
M Cha, P Rodriguez, J Crowcroft, S Moon, X Amatriain
Proceedings of the 8th ACM SIGCOMM conference on Internet measurement, 71-84, 2008
3572008
Towards time-dependant recommendation based on implicit feedback
L Baltrunas, X Amatriain
Workshop on context-aware recommender systems (CARS’09), 25-30, 2009
3202009
I like it... i like it not: Evaluating user ratings noise in recommender systems
X Amatriain, JM Pujol, N Oliver
User Modeling, Adaptation, and Personalization: 17th International …, 2009
2802009
The wisdom of the few: a collaborative filtering approach based on expert opinions from the web
X Amatriain, N Lathia, JM Pujol, H Kwak, N Oliver
Proceedings of the 32nd international ACM SIGIR conference on Research and …, 2009
2122009
Netflix recommendations: Beyond the 5 stars (part 1)
X Amatriain, J Basilico
Netflix Tech Blog 6, 2012
2102012
Rate it again: increasing recommendation accuracy by user re-rating
X Amatriain, JM Pujol, N Tintarev, N Oliver
Proceedings of the third ACM conference on Recommender systems, 173-180, 2009
1982009
Towards instrument segmentation for music content description a critical review of instrument classification techniques
H Boyer, X Amatriain, E Batlle, X Serra
Proceedings of the 1st International Symposium on Music Information …, 2000
1832000
Mining large streams of user data for personalized recommendations
X Amatriain
ACM SIGKDD Explorations Newsletter 14 (2), 37-48, 2013
1592013
Big & personal: data and models behind netflix recommendations
X Amatriain
Proceedings of the 2nd international workshop on big data, streams and …, 2013
1322013
Spectral processing
X Amatriain, J Bonada, A Loscos, X Serra
DAFX: Digital Audio Effects, 373-438, 2002
120*2002
Recommender systems in industry: A netflix case study
X Amatriain, J Basilico
Recommender systems handbook, 385-419, 2015
1002015
Weighted content based methods for recommending connections in online social networks
R Garcia-Gavilanes, X Amatriain
Association for Computing Machinery, 2010
812010
Content-based transformations
X Amatriain, J Bonada, lex Loscos, JL Arcos, V Verfaille
Journal of New Music Research 32 (1), 95-114, 2003
722003
The science behind the Netflix algorithms that decide what you’ll watch next
T Vanderbilt
Wired, 2013
712013
Past, present, and future of recommender systems: An industry perspective
X Amatriain, J Basilico
Proceedings of the 10th ACM conference on recommender systems, 211-214, 2016
702016
Implicit feedback recommendation via implicit-to-explicit ordinal logistic regression mapping
D Parra, A Karatzoglou, X Amatriain, I Yavuz
Proceedings of the CARS-2011 5, 2011
692011
Walk the talk: Analyzing the relation between implicit and explicit feedback for preference elicitation
D Parra, X Amatriain
User Modeling, Adaption and Personalization: 19th International Conference …, 2011
682011
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