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Date:
07 Nov 2014
Tutorial on Probabilistic Topic Modeling: Additive Regularization for Stochastic Matrix Factorization
- Konstantin Vorontsov,
- Anna Potapenko
- … show all 2 hide
Abstract
Probabilistic topic modeling of text collections is a powerful tool for statistical text analysis. In this tutorial we introduce a novel non-Bayesian approach, called Additive Regularization of Topic Models. ARTM is free of redundant probabilistic assumptions and provides a simple inference for many combined and multi-objective topic models.
- Title
- Tutorial on Probabilistic Topic Modeling: Additive Regularization for Stochastic Matrix Factorization
- Book Title
- Analysis of Images, Social Networks and Texts
- Book Subtitle
- Third International Conference, AIST 2014, Yekaterinburg, Russia, April 10-12, 2014, Revised Selected Papers
- Pages
- pp 29-46
- Copyright
- 2014
- DOI
- 10.1007/978-3-319-12580-0_3
- Print ISBN
- 978-3-319-12579-4
- Online ISBN
- 978-3-319-12580-0
- Series Title
- Communications in Computer and Information Science
- Series Volume
- 436
- Series ISSN
- 1865-0929
- Publisher
- Springer International Publishing
- Copyright Holder
- Springer International Publishing Switzerland
- Additional Links
- Topics
- Keywords
-
- Probabilistic topic modeling
- Regularization of ill-posed inverse problems
- Stochastic matrix factorization
- Probabilistic latent sematic analysis
- Latent Dirichlet Allocation
- EM-algorithm
- Industry Sectors
- eBook Packages
- Editors
- Editor Affiliations
-
- 1. National Research University Higher School of Economics
- 2. Krasovsky Inst. of Math. and Mechanics
- 3. Université catholique de Louvain
- 4. University of Wolverhampton
- 5. National Research University
- Authors
-
-
Konstantin Vorontsov
(6)
-
Anna Potapenko
(7)
-
Konstantin Vorontsov
- Author Affiliations
-
- 6. The Higher School of Economics, Dorodnicyn Computing Centre of RAS, Moscow Institute of Physics and Technology, Moscow, Russia
- 7. Dorodnicyn Computing Centre of RAS, Moscow State University, Moscow, Russia
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