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Latent dirichlet allocation

David M. Blei; Andrew Y. Ng; Michael I. Jordan · Journal of Machine Learning Research · 2003

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We describe latent Dirichlet allocation (LDA), a generative probabilistic model for collections of discrete data such as text corpora. LDA is a three-level hierarchical Bayesian model, in which each item of a collection is modeled as a finite mixture over an underlying set of topics. Each topic is, in turn, modeled as an infinite mixture over an underlying set of topic probabilities. In the context of text modeling, the topic probabilities provide an explicit representation of a document. We present efficient approximate inference techniques based on variational methods and an EM algorithm for empirical Bayes parameter estimation. We report results in document modeling, text classification, and collaborative filtering, comparing to a mixture of unigrams model and the probabilistic LSI model.

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APA 7

Blei, D. M, Ng, A. Y, & Jordan, M. I. (2003). Latent dirichlet allocation. https://doi.org/10.5555/944919.944937

MLA

Blei, David M, et al. "Latent dirichlet allocation." 2003. https://doi.org/10.5555/944919.944937.

Chicago

Blei, David M, Andrew Y. Ng, and Michael I. Jordan. 2003. "Latent dirichlet allocation.". https://doi.org/10.5555/944919.944937.

Harvard

Blei, D. M, Ng, A. Y. and Jordan, M. I. 2003, Latent dirichlet allocation, Journal of Machine Learning Research, available at: https://doi.org/10.5555/944919.944937 [Accessed 7 Aug. 2026].

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Title
Latent dirichlet allocation
Author / contributors
David M. Blei; Andrew Y. Ng; Michael I. Jordan
Publisher
Journal of Machine Learning Research
Publication year
2003
Language
English

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